Monday, March 24, 2008

3-24-08


LL11090
Smashing without splashing : Bouncing mechanisms of a droplet onto a bath

How to dribble with an oil droplet ? Droplets may experience a periodic bouncing motion on a vertically vibrated viscous oil bath, exactly as a
basketball on the ground. Nevertheless, the challenge is much greater since the droplet may disappear by merging with the bath. To avoid that
coalescence, a thin air layer must exist between the droplet and the bath, and needs to be replenished at each bounce. This letter introduces
the mechanisms used by the droplet to refill its vital air cushion : the droplet deformation and its internal motions are required ingredients
to ensure the bouncing. The bouncing ability also depends on the forcing frequency of the oscillated bath. We discovered that there is an
optimum frequency for which the forcing required to bounce is minimum, and a cut-off frequency above which the droplet needs to change of
bouncing mode.

***LN11458
A Peak in the Melting Line of Hydrogen

A peak has been found in the melting line of hydrogen at T=1055 K and a pressure of 0.65 megabar. Over 70 years ago it was predicted that at high pressure the molecules of solid hydrogen would dissociate to form an atomic metallic lattice, later predicted to be a possible room temperature superconductor. For most materials the melting temperature increases with pressure or densification, but recent theories have predicted the melting temperature of hydrogen would rise, then fall with increasing pressure, as a possible precursor of metallization. Theorists speculate that at multi-megabar pressures the melting temperature might decrease to zero Kelvin so that hydrogen remains an atomic liquid with both the electrons and protons being superconducting. Earlier experiments designed to observe this peak were foiled by the diffusion of hydrogen at high temperature into the elements of high-pressure cells, the hydrogen sample either disappearing into confining metals or embrittling the cell. An innovative technique of melting for nanoseconds using pulsed laser heating was used to overcome this problem, as in the short time of melting there is insufficient time for hydrogen diffusion.


***

LM11601
Stunt Doubles: Ultracold Atoms Could Replicate the Electron ‘Jitterbug’

Ultracold atoms moving through a carefully designed arrangement of
laser beams will jiggle slightly as they go. If observed, this never-
before-seen “jitterbug” motion would shed light on a little-known
oddity of quantum mechanics arising from Paul Dirac’s 80-year-old
theory of the electron.

Dirac’s theory, which successfully married Einstein’s theory of
relativity to quantum mechanics, famously predicted antimatter,
electron spin, and perhaps most enigmatically, that an isolated
electron moving through empty space would vibrate back and forth at
the speed of light. This shaking—named Zitterbewegung from the
German for ‘trembling motion’—is so rapid and so tiny in amplitude
that the relativistic uncertainty principle prohibits its direct
observation in free electrons.

In this paper, we devise an experimental arrangement of laser beams
in which atoms, such as rubidium-87, mimic the behavior of the
electrons in Dirac’s theory. The atoms will show ZB—but with
vibrations slow enough and large enough to be detected. Our proposal
may offer access to an aspect of electron behavior that would
otherwise remain beyond observational scrutiny.

Figure Caption: A) Optical lattice of laser beams trapping an atomic
cloud. Color scale indicates cloud density: black is low,
white high. B) Jittering motion of the atomic cloud in the optical
lattice. The horizontal axis represents the spatial distribution of
the cloud along one direction, while the vertical axis shows the
variation of cloud density with time.


***


LE11279
High-magnetic-field atom and plasma trap

Developments in cooling and trapping of atoms and ions have given birth to
the emerging area of cold, ionized, strongly magnetized matter (magnetized
plasmas). At the University of Michigan, such plasmas have recently been
created in a particle trap that has the unique capability to simultaneously
laser-cool and trap neutral atoms as well as to confine electrically neutral
plasmas in extremely strong magnetic fields. The plasma dynamics observed in
this work is characterized by a breathing-mode oscillation of the positive
(ionic) plasma component, which feeds back on the behavior of the negative
(electron) component of the plasma. The electron component has also been
found to undergo significant cooling. These results could help researchers
produce electrically neutral, strongly coupled plasmas, an unusual state of
matter that is also found in neutron-star crusts and in gas-planet cores. It
is further possible to study recombination of magnetized plasmas into
Rydberg atoms, which are highly excited, neutral atoms. The demonstrated
capability of the apparatus used in this work to trap Rydberg atoms may
become relevant in efforts elsewhere to trap anti-matter, in quantum
computing applications, and in research on correlation and diffusion in
many-body quantum-mechanical systems.

***

LM11364

The mechanism of B diffusion in amorphous Si revealed.

The migration of B atoms within an amorphous matrix of Si has been investigated through proper experimental characterizations and advanced modeling. In this paper, the diffusion of B is shown to be a mediated process via the interaction of point defect of the amorphous matrix (i.e., unsaturated Si bonds). With respect to the case of migration in crystalline Si, B diffusivity in amorphous Si is measured to be orders of magnitude higher, also depending on the thermal history of the surrounding host and on the B concentration itself. In fact, since boron is incorporated in 3-fold coordinated matrix sites, the presence of B enhances the density of dangling bonds, thus self-improving its migration ability. This effect is of high impact, since B migration results to be far cry from a standard diffusion regulated by the Fick’s law, having also significant implications on the dopant properties in Si crystals generated from the amorphous phase. Boron atoms are modelled to diffuse after the interaction with dangling bonds promoting the formation of a temporary and metastable, 4-fold coordinated B. Finally, in case of density higher than 0.5% at., B precipitation is observed, through quick formation of B complexes, quite stable against dissolution.

***

LK11711
Discovery of a New Theory of Stressed Solid-Solid Phase
Transformations


Using new data, researchers have advanced a new theory for the
rate at which one solid phase of a material transforms into
another solid phase in the presence of applied stress. Studying
the amorphous (unordered) to crystalline (ordered) phase
transformation in impurity-free silicon under applied stress as a
model system, researchers were able to isolate the individual
atomic-level processes responsible for the phase transformation
and gain greater insight into the atomistic nature of the
phenomenon. The study of stressed solid-solid phase
transformations is of vast fundamental significance due to the
ubiquitous nature of stresses during phase transformation
processes and the technological importance of such
transformations. For example, the amorphous to crystalline phase
transformation in many semiconductors is critical to the
manufacturing of integrated circuits. The new results and theory
have called into question the previously accepted and highly
recognized model of stressed solid-solid phase transformations
advanced more than seventeen years ago.

***

LJ11046

Mathematics for mental blocks from spiny dendrites

Santiago Raman y Cajal's hand tracings of individual neurons in the
1890s recorded dendritic trees bristling with small micrometre sized
protrusions, or spines. Many studies have since shown that changes in
the morphology and distribution of spines are correlated with disease
processes, substance abuse and ageing; but a mechanistic understanding
of this correlation has been elusive. Recently, using fluorescence
microscopy experiments, Santamaria and colleagues (Neuron, 2006) found
that spines behave as transient molecular
traps, that cause anomalous diffusion along spiny dendrites. The shapes
and distributions of spines are critical determinants of the efficacy of the
anomalous diffusion. Electrical signalling in nerve cells is dependent on
electro-diffusion of ions along dendrites. Applying insights from the
mathematics of fractional calculus we have introduced new fractional
cable equations for electro-diffusion along spiny dendrites, that
incorporate anomalous diffusion due to transient trapping by spines.
The fractional cable equations for spiny dendrites extend Rall's cable
theory for smooth dendrites, which has dominated mathematical
descriptions of electrical signalling in nerve cells for the past half
century. Importantly, the new fractional cable equations reveal how
changes in the morphology and distributions of spines along dendrites
will alter electrical signalling in nerve cells, in ways that could not
be anticipated from standard cable theory. The new theory provides novel
insights into likely mechanisms for the cognitive decline that
accompanies disease processes, substance abuse, and normal ageing.

***

LG11054


A Moving Laboratory Atomic Collision Experiment: Observation of
Strong Correlation Between Two Low-Energy Electrons


The correlation between two low-energy electrons emerging from the
near-threshold single ionization of a stationary target atom by electron
impact (or double ionization by photon irradiation) has been subject of
numerous experimental and theoretical studies in the past decades. It was
Gregory H. Wannier who showed for the first time in 1953 that at the
threshold the two-electron break-up is a highly correlated process, in which
the electrons move symmetrically in opposite directions. According to
Wannier, the angular correlation of 180 degree is expected to increase with
decreasing electron energies.

In the field of energetic atomic collisions a unique possibility of
observing extremely low-energy (~ meV) electron emission is provided by the
so-called cusp phenomenon. The cusp is a peak appearing in the energy
spectrum of the electrons emitted from the collision in forward direction.
The electrons contributing to the cusp move with velocities approximately
equal to that of the bombarding ion (atom), i.e., they fly with very small
velocities relative to the projectile. Therefore, an electron spectroscopic
experiment performed for the cusp can be regarded as a moving laboratory
experiment by which one can obtain information about the properties of the
low-energy electron emission in the projectile-centered reference system.

In this Letter we report about a moving laboratory experiment by which we
showed that the Wannier-type correlated two-electron state can also be
formed in atomic collisions. In the experiment we collided neutral helium
atomic projectiles of 100 keV energy with helium atoms. We measured the
energies of two electrons ejected simultaneously following the mutual
target and projectile ionization. We observed a strong correlation between
the electron energies in the vicinity of the cusp, corresponding to angular
correlation of 180 degree in the projectile frame.

***

LK11773
The rich behavior of electronic polarizability of crystalline solids in a strong magnetic field

When an electric field is applied to an insulator, the electric charges are displaced, and the coefficient of proportionality between the field and the displacement is called the polarizability. Polarizability is an important property of insulators. In this letter, we show that the polarizability of the electrons in a crystalline solid, in the presence of a strong magnetic field, has a rich and complex behavior – the sign of the polarizability can for example be changed when the electron concentration is changed ! We explain that this behavior is strongly related to the presence of current carrying edge states in the system: electrons which propagate near the border of the sample, because of the crossed electric and magnetic fields. Our work also sheds light on the fascinating properties of the energy spectrum of a crystalline solid in a strong magnetic field. It has been known for more than thirty years that this spectrum is described by the so-called "Hofstadter butterfly": an intriguing self-similar structure, whose shape is similar to a butterfly. In particular, the gaps of the spectrum are described by an equation where the two unknown variables are integers, called topological gap numbers. The physical interpretation of one of these integers was already known: it is directly related to the number of current carrying edge states. In this work, we provide the first interpretation of the other topological gap number: it is directly related to the electronic polarizability!

***

LK11292
*Melting Temperature Controversy is Resolved*

A long-standing dispute over the high-pressure melting temperature of
the metal molybdenum has now been resolved. Remarkably, two
well-established experimental techniques for melting metals at extremely
high pressures, namely, shock wave compression and laser-heated diamond
anvil cells (DAC), yield more than a twofold difference in the melting
temperature of molybdenum at a pressure comparable to that at the center
of the earth. In view of these contradictory experimental results,
physicists turned to large-scale computer calculations based on a sound
theoretical framework, density functional theory (DFT), for a
resolution. Calculated high-pressure melting temperatures for molybdenum
with an assumed body-centered cubic (bcc) crystal structure were all
well above the DAC-measured values, but the controversy remained because
there was no explanation for the results of the carefully conducted DAC
experiments. In this paper, we perform DFT-based computations from which
we draw three important conclusions. First, the face-centered cubic
(fcc) structure is more stable than the bcc at high pressures and
temperatures; hence, molybdenum does /not/ melt from the bcc structure
at high pressures, as is commonly assumed. Second, our calculated fcc
melting temperatures are in good agreement with the shock wave results.
Third, our calculated bcc-fcc phase boundary is consistent with the DAC
data. We conclude that the high temperature phase transition detected in
the shock wave experiments was melting, as claimed, and the DAC
experiments are mapping out a solid-solid phase boundary.

***

LK11561

Singlet state through a tiny multiplet of mediators

The singlet state of two particles with spin (or ¿spins¿) is a well-known
entity to physicists. This is due to its very special properties such as
invariance under various processes where the total spin is conserved, and
entanglement (i.e. correlations between the spins which cannot be attained
through classical mechanisms), together with many other potential
applications. If the particles interact properly, the singlet state may arise
naturally as a ground state. But, how do we prepare the singlet of two
non-interacting particles which are far apart? In this paper, we demonstrate
how to achieve the singlet of two remote spins (magnetic impurities or atoms)
on a wire. Mobile mediators (electrons or photons) in a given internal state
are sent in succession. Once it has interacted with the (initially
non-correlated) spins, each mediator is detected, reflected or transmitted, in
the same internal state it was initially prepared. After a small number of
iterations, a singlet state is achieved. The advantages of this scheme are
manifolds. For example, no precise control over time and strength of the
mediator-particles interaction is required. Due to all this, our scheme holds
the promise to generate singlet states in the lab in the near future.


***

LG11405

"Don’t disturb – it’s a classical correlation!"

Correlations are ubiquitous – both in classical and quantum worlds. We address the fundamental question of distinguishing classical and quantum correlations. Consider Alice and Bob sharing a quantum state. When Alice performs measurement on her part of the system, the overall state gets modified, in general. But if the correlation happens to be classical, Alice must be able to find an optimal measurement scheme leaving the entire state intact! In contrast, quantum correlated states are sensitive to partial measurements. Quantum discord proposed by Ollivier and Zurek (and an independently similar suggestion by Henderson and Vedral), as a measure of quantumness, aims towards quantifying the minimum disturbance upon an optimized partial measurement by Alice. However, such a scheme leads to a conflicting result: quantum discord (and another variant, quantum deficit, proposed by Rajagopal and Rendell) yield non-zero values for a large class of separable states - traditionally considered to be classically correlated. This raises a question on the division of composite states into separable and non-separable (quantum entangled) and even on whether quantumness of correlation is more general than quantum entanglement. Since quantum entanglement is considered to be an important resource in quantum communication and computation, this question needs a clear answer. We approach this issue by considering extended three party states shared by Alice, Bob and Charlie - but leaving the state of Alice-Bob unaltered. Our new measure “quantumness” quantifies the least disturbance suffered by the state of Alice-Bob, when an optimal partial measurement is performed at Alice-Charlie end. Strikingly, quantumness vanishes if Alice-Bob system is separable as Alice and Charlie together can always end up with an optimal measurement scheme, under which the Alice-Bob separable state remains insensitive! On the other hand, an optimal measurement by Alice-Charlie projects an entangled Alice-Bob state to its nearest separable state – with the same marginal state at the Bob's side. So, our measurement-based quantification serves as an upper bound to relative entropy of entanglement - a well-known measure of quantum entanglement. Our proposal thus leads to a conflict free union of quantumness of correlation with quantum entanglement itself.

***

LL11576
Streams of change

The boundary of an electronic droplet in a strong magnetic field may
be viewed as a collection of streams of charge flowing along the edge.
Traditionally, the interaction effects between the electrons are
treated by taking into account only scattering processes that keep the
amount of charge in each stream fixed. We show that when the
interaction is sufficiently strong, other scattering processes, which
do transfer electrons between the channels, lead to generation of
additional streams and rearrangement of the flow pattern. This
reconstruction of channels affects the non-Ohmic current-voltage
relation for electrons injected into the edge of the droplet. As such,
it may hold a clue to the solution of the outstanding discrepancy
between the experimental data and the predictions of the traditional
model for the edges of electronic systems in strong magnetic fields.
The instability generated by the aforementioned scattering processes
calls for a re-examination of their role in other strongly interacting
systems, and may help in designing new switching devices of nanometer
size



***


LX10824

Lifelike self-organizations of freely moving objects in a fluid

Thermal convection is responsible for generating wind in our atmosphere
and motion in the mantle inside the earth that leads to continental drift.
We demonstrate in this work, that a thermal convection system that
includes freely moving objects can turn into an oscillating and
self-organizing, lifelike machine. These free bodies assemble and
disassemble in a cyclic fashion, constantly counteracting the flow that
tends to force them together. This collection of spheres can be viewed as
a deformable mass that is entrained and reshaped by the convective flow.
Geophysicists might regard this system as a prototype, mimicking the
interaction between many small continents and the convective mantle. One
might also view it as a lifelike machine that conducts semi-regular
assemblies, simply powered by a heat flux through a fluid containing
mobile objects.

***

LM11517
In this paper we developed a method to assemble paramagnetic colloidal
particles into regular two dimensional micro-periodic structures
. We
control the particle motion by using a magnetically structured film as
substrate (e.g. a Garnet film) and following application of an oscillating
magnetic field normal to the film. Tiny defects in the film's magnetic
pattern act as nucleation agents for growth of particle clusters. The film
morphology (a series of ferromagnetic striped domains) reflects into the
assembled clusters in such way that, adjusting the frequency and/or strength
of the applied field one obtains different order in the colloidal aggregate,
like hexagonal, square, chain-like etc… The strength of the external field
controls also the stability of the formed structures. The latter can be easily
melted by increasing the filed higher than a critical value. All these results
will appear in the issue of Physical Review Letters.
The discovered method is useful towards the controlled design of novel micro
and nano-structured materials and devices. Also, our colloidal assembly method
can be used as a model system in two-dimensions where to study phenomena of heterogeneous
nucleation driven by substrate defects, crystal formation or phase transitions
between morphological orders.


***


LK11276

Hopping dislocation on an atomic wire

The dislocation or crystallographic misfit defect is ubiquitous in materials and greatly affects various properties of materials from growth and fracture to optical and electrical properties. The effects of dislocation can become more and more important as the size of the material shrinks down to, like, nano particles and nano wires. In this paper, we have succeeded in visualizing the existence and the motion of dislocations on the extremely small materials system, that is, one-nanometer wide atomic wires assembled on a silicon substrate. A pair of extrinsic impurity atoms is favored to adsorbed commensurately with the underlying wire lattice (top panel in the figure). However, if the distance between the adsorbates is incommensurate occasionally, the wire lattice in between has a misfit dislocation (middle panel) of atomic scale. At room temperature, this dislocation hops between the two adsorbates making a characteristic modulation pattern in the scanning tunneling microscopy image (bottom).

***

LK11399
Interactions between three Hadrons from Quantum Chromodynamics

For the first time, the three-body interaction in a multi-hadron
system has been
determined from Quantum Chromodynamics (QCD), the underlying theory
of the strong
interactions that binds quarks and gluons into protons, pions and all
hadrons.
Since the 1970s, it has been known that the interactions between hadrons
are governed by the equations of QCD, and since that time an enormous
effort has been
dedicated to solving these equations. Recent advances in lattice QCD,
a numerical technique for solving QCD,
and in computational power are finally allowing for quantitative
calculations. The NPLQCD collaboration
have succeeded in extracting the properties of simple multi-hadron
systems (systems composed of two, three,
four and five pions) directly from lattice QCD. Using cutting-edge
supercomputers at
The Thomas Jefferson National Accelerator facility, FermiLab, the
National Center
for Supercomputing Applications, Lawrence Livermore National
Laboratory, and
the Mare-Nostrum Supercomputer in Barcolona, Spain, the team has
demonstrated
the presence of an irreducible three-pion interaction.
This pioneering research, points the way to QCD studies of nuclear
structure and interactions which,
in turn, can address fundamental questions about the nature of our
Universe.
Their results appear in the current issue of Physical Review Letters.

***

LL11060
Ever since Feynman first proposed the idea of a quantum Turing machine
in the 1980s, the field of quantum information theory has blossomed,
promising super-powerful machines solving classically-intractable
problems, perfectly secure communication, and shedding new light on
fundamental issues such as the interpretation of quantum mechanics.

The power of quantum mechanics to promise so much relies heavily on
the resource of entanglement. This is a strong correlation between
particles, stronger than allowed under the laws of classical
mechanics. Entangled particles, in some sense, lose their individual
identities and only truly exist as part of a pair or group.

Entanglement occurs naturally in groups of physical systems; for
example, spin chains, which are often used as a model of magnets. The
amount of entanglement occurring is often given as an indication of
how powerful such a system would be as a quantum computer.

The standard measures of entanglement used at present are a little
artificial, in as much as they measure the amount of entanglement that
can be extracted from a system if one has an infinite number of copies
of the system! This is called the 'asymptotic limit'. A far more
realistic measure is given by a quantity called the 'single copy
entanglement', which is how much entanglement exists in one copy of
the system.

In this paper, I give the first indication that for a particular class
of systems (those with a finite gap between the energies of the ground
state and the first-excited state), the single copy entanglement is
equal to the asymptotic amount! This means that all the entanglement
present can be extracted from a single copy of the system, and that
the presence of many copies of the system does not convey any
advantage. Previously, it was known that for systems that have no
energy gap, half the entanglement present may be extracted from a
single copy.

I hope that this result will go some way in to understanding the
process of entanglement extraction from naturally-occurring many-body
systems, and the structure of this particular class of system.

***


LM11759
Picking biomolecules by structure

The molecular building blocks of life, so called biomolecules, are an
important class of molecules. Their intrinsic properties are nowadays
often examined using the molecular beam technique. It was realized in
the 1980s, that even at the very low temperatures of only a few Kelvin
in these molecular beams, multiple structures of the molecules are
present. While all individual structures have the same mass, they
possess different properties, i. e., electric dipole moments. We have
now for the first time separated the individual structures of a
prototypical neutral biomolecule, namely 3-aminophenol, that exhibits
two distinct structures. Our separation technique utilizes the
gradients of strong inhomogeneous switched electric fields and
exploits the different electric dipole moments of the individual
structures. Similar to the separation of charged particles based on
their mass-to-charge ratios, we select neutral molecules based on
their mass-to-dipole-moment ratios. With our new separation method it
is possible to prepare clean samples containing practically only
molecules of a single structure, what will allow a variety of new
experiments, such as X-ray- or electron-diffraction imaging of the
individual structures or tomographic reconstructions of their charge
distributions.

***


LH11343


We observed spontaneous structural change of single proteins at a
temperature of 1.5 K by visible fluorescence spectroscopy. The
structural information obtained from this type of the experiments will
disclose the details of the structure-function relationship of
proteins. During the last decade, fluorescence spectroscopy of single
proteins at a liquid helium temperature has been successfully applied
in the near-infrared region to bacterial photosynthetic antenna
complexes. In the present paper, we developed a new design of a
low-temperature fluorescence microscope in order to generalize the
method to study proteins fluorescing in visible. The technical
difficulties in working in the visible region were overcome by using
reflective optics. The fluorescence spectrum of single
green-fluorescent proteins at 1.5 K makes a distinction between
different metastable conformations that last for tens of seconds.

***

LD11800
*How do foams and concentrated emulsions flow?*

In this paper we explain and describe theoretically the basic process
governing viscous friction in flowing foams and concentrated emulsions.
Our model is based on detailed consideration of the dynamics of the
transient planar films, formed between two neighboring bubbles (drops),
which slide along each other in flowing foams (emulsions). By comparing
the shear rate of the system, which determines how long is the time of
contact between the neighboring bubbles (drops), with the rate of
thinning of these transient films, we explain the experimentally
observed square-root dependence of the shear stress vs. shear rate,
which is known for more than 20 years, without being explained till now.
The model predictions are in good agreement with various experimental
results, obtained with both foams and emulsions. Further development of
the model, accounting for the energy dissipation on the surface of the
bubbles and drops, is in progress.

***

LG11883

Hurricanes in a Soap Bubble

Can hurricanes be produced in the lab? Well, that's what our recent
paper to be published in PRL shows. Motivated by the physics of
atmospheric phenomena, our experiment uses a soap bubble (a half
bubble is used actually) heated at the equator and cooled at the top.
The heat difference between the equator and the 'pole' creates
turbulent convection in the soap bubble. We show that once in awhile,
a large single vortex emerges from the turbulent background. The shape
and dimensions of this vortex resemble those seen for natural
hurricanes or cyclones, or Jupiter's Red Spot for that matter. By
tracking this vortex, we show that its movement is random, and when
the statistics of this random motion is compared to that of natural
hurricanes, they turn out to be very much alike. In simple terms, the
chaotic motion of our 'hurricanes' resembles that of the real ones in
the atmosphere making our system attractive for the understanding of
the randomness of hurricane movements and opening further
possibilities for predictive models of such large scale natural
phenomena.

***

prl 100, 090402

Thermal quantum physics in Lineland observed

A team of researchers from the University of Amsterdam, The Netherlands
and the University of Queensland, Australia, has succeeded in comparing
temperature and density of a one-dimensional quantum gas to an exact
theory that was developed back in 1969 by Nobel Laureate C. N. Yang and
his brother, C. P. Yang. The results are published in the 7 March issue of
Physical Review Letters [Phys. Rev. Lett. 100, 090402 (2008)] and were
selected as Editors' Suggestion as a means of promoting reading across
fields.

The experiments in Amsterdam were performed using an 'atom chip' a
lithographically produced pattern of gold wires on a silicon substrate.
By sending currents through the wires, a gas of rubidium atoms is
magnetically trapped and cooled to the point where the atoms can only
move in one dimension. The atoms thus live in 'Lineland'. The
needle-shaped atomic cloud, with a width less than a percent of a human
hair, is cooled to temperatures down to 100 nanokelvin.
In this way, the first direct comparison was made possible between
experiment and the nearly 40 years old Yang-Yang theory. The Yang-Yang
exact solutions to the one-dimensional Bose gas model at finite
temperature were once only a tour-de-force of mathematical and quantum
many-body physics. The experimental techniques of laser cooling and
magnetic trapping are now allowing physicists to precisely engineer these
model systems in the laboratory.
In addition, the experiment allowed access to the momentum distribution
of the gas. This distribution cannot be directly obtained using the
Yang-Yang method and the measurement thus poses a new challenge to theory.

***

LM10983
Gravity Wave “Smoking Gun” fizzles, but nevertheless provides more sensitive probe of processes the physics of the early universe than previously envisaged.

Inflation is currently the best theory we have to explain the observed isotropy and flatness of the Universe. Moreover, it also predicts a spectrum of primordial density fluctuations arising from quantum mechanics that agrees strikingly well with observations of large scale structure. However, the many different model manifestations of Inflation can also accommodate the results of almost any observation, from the curvature of the observable universe, to the nature of large-scale structure. But if the scale of inflation is close to the Grand Unified Scale, where the three non-gravitational forces appear to come together in strength, a primordial spectrum of gravitational waves will result that would leave a measurable imprint on the cosmic microwave background (CMB) radiation via a certain type of polarization in the radiation, called a B mode polarization. This has motivated an active effort to search for such a signal, the apparent ‘smoking gun’ that would finally directly confirm the fact that inflation indeed occurred. Our work, however, demonstrates that a strikingly large (almost 10,000 times larger than naïve dimensional estimates had suggested) and very similar primordial gravitational wave signal can result from non-inflationary phase transitions that might happen later in the early universe. This unfortunately implies that observing a gravitational wave imprint in the CMB may not provide unambiguous proof that inflation actually occurred. Nevertheless the large enhancement of a non-inflationary signal also implies that the gravitational wave imprint in the CMB is a far more sensitive probe of new physics near the GUT scale than previously envisaged and further motivates the search for such a signal.

***


LM11151
Evidence for a New Behavior of Anti-Matter is Confirmed at Fermilab

In 1955 physicists realized that a fundamental particle can have the
"ghost-like" behavior of changing back and forth between its "normal"
state and its "anti-matter" state. The back and forth oscillation
occurs at a fixed frequency, as if the particle was "ringing" like a
bell or tuning fork. Last May, two separate teams of physicists, from
the Stanford Linear Accelerator Laboratory in California and the KEK
Laboratory in Japan, published evidence for a new type of matter
anti-matter oscillation involving particles with a "charm" quark. A
race was on to see if either of the team's results could be confirmed.
The Collider Detector at Fermilab Collaboration has now confirmed the
type of evidence seen at Stanford. The Figure shows the data for a
key ratio of decay rates that changes as a function of time (dashed
curve) and is not consistent with a flat behavior (dotted line). The
implications of the newly observed behavior are still to be determined
- whether it can be explained by the "standard model" or
whether new physical laws have been unveiled. For now, physicists
want to make more precise measurements of the "charm oscillations" and
study them using different techniques.

***

LK11787

A new recipe to cook superheavy elements

Producing superheavy elements is a delicate procedure. While light ions
fuse easily with heavy nuclei, resulting compound nuclei are hot.
Generally, prompt fission destroys them and only very rarely a nucleus
survives after evaporation of four or five neutrons. In contrast, more
symmetric target-projectile combinations, leading to colder compound
nuclei that are more prone to survive, do not fuse so easily due to
increased Coulomb repulsion. We took the best of both worlds: a light
projectile guaranteeing fusion and a low projectile energy to keep
things cold. By doing so we risked falling below the Coulomb barrier.
However, the deformation of the used actinide target nuclei causes the
barrier height to be no longer at a fixed value but to depend on the
orientation of the colliding nuclei. Using a highly efficient chemical
technique, we proved that compound nuclei are formed at energies well
below the classical fusion barrier. Fusion of ^26 Mg with ^248 Cm
produced the new nuclide ^271 Hs after evaporation of only 3 neutrons
with surprisingly high yield, comparable to those of ^270 Hs and ^269 Hs
produced at higher energies. The new reaction type holds the promise to
synthesize other new neutron-rich superheavy nuclei.

***

LK11083

Efficiency of multiple-exciton generation in quantum dots

Efficient multiple-exciton generation (MEG) has been recently reported in semiconductor quantum dots. By producing multiple carriers per absorbed photon (“several for the price of one”), MEG has the potential to significantly increase the output current, and therefore the efficiency, of solar cells. The difficult question is: Exactly how many carriers are generated by a single photon? Up to now, the number of carriers produced by MEG has been estimated by considering that the absorption spectrum is “bleached” by the presence of electron-hole pairs generated by MEG, and assuming that this bleaching is linear with the number of electron-hole pairs N. In this paper we critically examine this assumption using atomistic calculations for colloidal CdSe quantum dots. We find that the bleaching of the absorption spectrum depends non-linearly on N. As a result, MEG efficiencies obtained from the linear scaling assumption are significantly underestimated, if the bleaching is entirely due to MEG. We also find that there is a maximum value of the bleaching that can be attributed to MEG. Thus, any measured value in excess of this maximum must originate from other bleaching mechanisms.

***

LN11138

Non-local Cooper pairs in a graphene flake


Graphene, a single-layer hexagonal lattice of carbon atoms, is a promising candidate for future nanoelectronics. Combining its unique properties with superconductivity, we predict a very special scenario for the Cooper pair injection within a graphene sheet: the outgoing electrons are emitted in opposite directions rather than in the same direction as it is the case in usual conductors. This enabling property allows the spin-entangled unbound electrons to be detected far apart from each other and may help to confirm the non local character of quantum mechanics. Such fundamental tests, performed successfully in quantum optics with polarization-entangled photons, remain a challenge in electronic systems. Previous attempts to collect electrons with nearby metallic tips failed due the electrons tunnelling directly from one tip to another. Such spurious processes are eliminated owing to the unique band structure of this novel bipolar graphene device.

***

LG11298


COMPLEX NETWORKS: IS THERE A WAY BACK?

The complex network enterprise has been largely based on models that
ignore link directionality, for the excellent reason that undirected
networks are much simpler to study. But, given that most real networks are
directed [1], how consequential is the asymmetry of network connections
for widespread network phenomena such as the small-world effect? In
undirected networks, Watts and Strogatz [2] have shown that the
small-world effect results from a combination of small node-to-node
distance AND very large number of short loops (or clustering coefficient).
In fact, it can be shown that these two ingredients are essential for the
success of the celebrated Milgram message-passing small-world experiment
[3], or any search algorithm based on
the same principle [4]. Our study shows, however, that directed networks are
fundamentally different: they tend to have very few loops when compared to
random versions of the same network. The directed neural network of C.
elegans, for example, has less than 50% of the short loops expected from
the random counterpart despite the well-known fact that, when regarded as
an undirected network [2], it has a very large clustering coefficient
compared to randomly rewired versions of the network. Similar behavior was
confirmed for most networks in our database. We suggest that this
distinctive property of directed networks will have widespread
implications in various domains. For example, the reduced number of loops
implies enhanced stability in foodwebs, improved optimization in
transportation networks, reduced reinforcement in the adoption of norms in
social networks, and enhanced
synchronizability in oscillator networks, just to name a few.


***

LG12027
Dynamical clustering of counterions on flexible polyelectrolytes


In contrast to previous studies, which considered equilibrium properties of polyelectrolyte alone, we use molecular dynamics simulations to study the spatio-temporal dynamics of charge fluctuations around a polyelectrolyte molecule at charge densities above and below the classic counterion condensation threshold. Surprisingly, the counterions are found to form weakly interacting clusters which exhibit slowly decaying short range orientational order. Local charge fluctuations are shown to create energy fluctuations comparable to activation barriers for transitions between chemical states and sufficient to affect the polyelectrolyte interaction with an approaching ligand molecule in biological systems. Our results provide new insight into the behavior of counterion-charged polymer association at nanometer and nanosecond scales, information essential for understanding a wide variety of phenomena, ranging from inter-cellular transport in biological systems to self-assembly of macromolecules and to stability of polymer gels and colloids.

***

LK11486

The strength limit of hydrogen bonds in protein materials

Hydrogen bonds in proteins are abundant weak chemical interactions that govern the mechanical behavior of biological protein materials such as spider silk, muscle tissue and amyloid fibers, yet, their mechanical strength remains unknown. Many biological processes involving cell mechanics and cell adhesion depend on the unique properties of these weak bonds, in particular for enhanced robustness as well as their ability to self-heal and to self-assemble. The lack of understanding of mechanical strength has prevented us from developing accurate models for genetic diseases, diagnosis and treatment options for molecular medicine, and the ability to utilize proteins as a platform to develop novel bioinspired materials.

In the upcoming Physical Review Letters article, we report a simple theoretical framework, based on Griffith’s model of fracture mechanics introduced in 1921, which predicts the maximum strength of hydrogen bond assemblies in proteins, providing a universally valid model that unifies previously contradicting experimental observations. The model captures the key physical mechanisms that govern the strength of protein materials, and thereby provides a unifying explanation to some of the most widely discussed and unresolved aspects of protein unfolding experiments. Our findings may have implications for nanoscience, biological sciences and molecular medicine, and may help in the interpretation of AFM and optical tweezers experiments.

***

LK11748
Snipping the Light Fantastic: The World's Shortest Single Photons

Single photons (discrete wavepackets of light) are not only interesting in terms of fundamental physics, but also from the point of view of applications in the emerging field of quantum information processing - a field that has the potential to revolutionize computing by harnessing the data processing power inherent in quantum mechanics. In this paper we present the results of a new technique, based on photon pair generation, that for the first time allows the preparation of single photons of exceptionally high quality, conditioned on the detection of their twin. Furthermore, our photons have a temporal duration of as little as 65 femtoseconds (65 millionths of a billionth of a second), to our knowledge the shortest single photons ever generated. The precise timing and consistent attributes of these photons make them ideal for implementing photonic quantum logic gates and conducting experiments requiring large numbers of single photons, as required by quantum computing algorithms.

***

LL11701
Existence of a spin-gap in the normal state of the superconductor Mo3Sb7

Though the existence of a pseudo-gap (PG) in the quasi-particle density of states in the normal state of high-Tc (HTc) superconductors has been well documented, there are no full answers to the question concerning the origin of the PG, and therefore to the feedback effect between the PG and superconductivity. In this paper, we want to point the existence of a spin-gap in the normal state of the superconductor Mo3Sb7, thus resembling the situation found in HTc superconductors. The experimental data, including magnetization, electrical resistivity and specific heat exhibit that before the superconductivity sets in at 2.3 K, a spin-gap at a relatively high temperature of 50 K is formed due to a dimerization of the nearest-neighbors Mo-Mo pairs. The electronic structure calculations using the LSDA approximation show nesting property in the Fermi surface, favoring the superconductivity.



***


LP10906

We present Lagrangian studies of the local temperature mixing and heat transport in turbulent convection, based on three-dimensional direct numerical simulations. A detailed analysis of the acceleration and dispersion properties of Lagrangian tracers is provided. Caused by the interplay of buoyancy and gravity, convective turbulence is inhomogeneous and anisotropic. Consequently, significant differences between the vertical and lateral transport properties are found. Contrary to vertical tracer pair distances, the temporal growth of lateral tracer pair distances agrees with the Richardson law, but yields a smaller Richardson constant due to correlated pair motion in plumes. Our results thus imply that Richardson dispersion is also found in anisotropic turbulence. Furthermore, we take a "Lagrangian fingerprint'' of local heat transfer events, so-called thermal plumes which carry blobs of hotter or colder fluid from the boundaries into the bulk. The height-dependent joint Lagrangian statistics of vertical plume acceleration and local heat transfer allows us to identify a zone which is dominated by thermal plume mixing. Such studies are important for a better understanding of the transport of phytoplankton in the ocean or aerosols in the atmosphere.

***


LL11737

Visualization of nanoscale nucleation dynamics at femtosecond resolution


Nucleation processes are all around us, familiar to anyone who has observed the appearance of bubbles in a pot of boiling water. In this work we investigate the same process but, for the first time, with atomic-scale resolution and femtosecond time resolution. We use short pulses of x-rays to visualize the nanoscale fluctuation dynamics that underlie superheated liquids, first order phase transitions in materials, and ablation physics. Our measurements capture a glimpse of never-before-seen transient states, and direct evidence for the spontaneous formation of fluctuating nanoscale voids. Because of the high spatial and temporal resolution, these experiments provide the first direct validation of theoretical simulations of the laser ablation process in semiconducting materials. The techniques developed in this work form the basis for a range of multidisciplinary experiments at future x-ray free electron laser facilities. More generally, they describe a new way of looking at materials in motion, on length-scales and time-scales far from human experience.

***

LN11428

Smaller is Stronger: Plasticity of Crystals at Nano-scale

The strength of materials at nano-scale is important for the fabrication and reliable functioning of devices. Plasticity in crystals generally occurs by the motion of dislocations, or line defects. While it is extremely difficult to directly observe the motion of individual dislocations, correlations can be made between the stress-strain behavior and dislocation activity. In bulk metals, dislocations multiply in the course of plastic deformation causing work-hardening. Although this fundamental concept is often assumed to be applicable to crystals of any dimensions, numerous recent studies have shown that conventional plasticity breaks down at the sub-micron scale and have demonstrated a pronounced size effect, whose main premise is "smaller is stronger." In this work we investigate for the first time the stress as a function of diameter in two fundamental types of crystal: gold (face-centered cubic) and molybdenum (body-centered cubic) single crystalline nano-pillars subjected to uniaxial micro-compression. Our results suggest that these crystals have fundamentally different plasticity mechanisms when reduced to nano-scale with significant work-hardening present in the latter type and virtually none in the former. The attainment of nearly 50% of the theoretical strength in gold suggests that plasticity is controlled by the nucleation of new dislocations rather than by interactions of the pre-existing ones. On the contrary, the smallest molybdenum nano-pillar achieves only ~7% of its theoretical strength, implying that plasticity is most likely driven by the intricate motion and interactions of dislocations inside the pillar rather than by nucleation events.

Monday, March 17, 2008

3-17-08


LL11022

Nanofridge doesn’t mind a jolt

The design of minuscule devices that operate for example within the
cells of living organisms could be severely hampered by a tremendous
obstacle: the thermal motion of molecules at this scale. In the last
10 years, research has intensified to find ways to convert this
thermal nuisance into useful purposes. Now a tiny refrigerator has
been uncovered that would be very happy to work in such a hostile
environment. Although the device has not yet been built, thousands of
them could one day be integrated onto a chip to cool computers and
other electronic devices.

The nanodevice, reported recently in Physical Review Letters by
physicists Martijn van den Broek and Christian Van den Broeck of
Hasselt University, Belgium, consists of two snail-shaped spiral
rotors separated by a thin membrane. If an external power source is
used to turn the device, it can operate as a heat pump, transferring
heat from a cold to a warm environment via the rotors. The report
also unveils how a theoretical principle can turn the better-known
motor functionality of the device into a fridge.

The rotors could be very useful in creating bio-engineered systems in
which the careful control of temperature would be needed to ensure
that certain biochemical reactions occur at the desired rates.

See also ‘Tiny fridge thinks it’s a motor’, IOP physicsworld.com
headline news, http://physicsworld.com/cws/article/news/31997.


***

LH10869

Carbon-Based Semiconductors Show Unique Sensitivity to Magnetic Fields

Usually small magnetic fields of a few mT not much stronger then the earth's magnetic field are not expected to effect electric current in semiconductors. However, the amount of electrical current flowing through organic (carbon-based) semiconductors can be strongly modified by such a magnetic field, in an effect called magnetoresistance (MR). In this paper, we report the unique property of organic semiconductors to show an inversion of MR, i.e., in one set of conditions, the current through an organic semiconductor may increase when a small magnetic field is applied, but small changes to the temperature, voltage or thickness of the thin-film organic semiconductor can cause the current to, instead, decrease. Additionally, we apply the MIST model (MR by the interconversion of singlets and triplets) we developed to describe the quantum mechanical phenomena responsible for the increase or decrease of current in the presence of magnetic field. We proposed that MR and the inversion of MR are due to the role of the very weak and usually ignored hyperfine interaction in a magnetic field. In contrast, inorganic semiconductors used in common microchips, such as silicon or gallium arsenide, are largely insensitive to such magnetic fields.

***


LC10969

Archimedes found in the coldest place.

Archimedean lattices, named by J. Kepler, are found to exist in the Bose-Einstein condensate, the coldest state of matter in the universe. For the first time, Authors have demonstrated that when the atom-molecule mixture of Bose-Einstein condensate rotates, vortices appear in a form of lattice made of triangles and rectangles. Surprisingly, this lattice agrees exactly with one of the eleven Archimedean lattices first elucidated by Kepler [1].

Authors explain how the two-to-one ratio of molecule and atom mass leads to the formation of Archimedean lattice and also the onset of lattice formation due to rotation.



***

LM11370

TRANSPORTING MATERIAL UPSTAIRS DURING NANOSTRUCTURE FORMATION

Bilayer and multilayer islands often develop during the initial stages
of epitaxy. Their formation requires upward transport of material, even
for bilayer islands where atoms must climb ¿upstairs¿ from the ¿first to
the second floor¿. How do atoms overcome binding to the edge of lower
layers in order to climb up? Often edge-bonded atoms in growing islands
become less strongly bonded due to strain buildup. Alternatively,
sometimes surface steps help create bilayer islands by allowing direct
access to the ¿second floor¿. However, in this study, we deposit Ag on
NiAl(110) where strain is not significant, yet bilayer islands form on
broad terraces away from steps even down to very low temperatures of
130K. How can upward mass transport be so facile? We propose that
strongly anisotropic interactions between Ag atoms on NiAl(110) are key.
Weak interactions in one direction allow easy climbing up one side of
monolayer islands. In addition, Ag atoms located at first-layer kink
sites at island edges are not effectively trapped by multiple strong
bonds (as in isotropic systems), but can escape by breaking just one
strong bond and then climb upstairs. Simulation of a realistic atomistic
model confirms this picture.

***

LL11760

Converting sound into light: the brightest sonoluminescent bubble ever.

Researchers from Instituto Balseiro/CAB, Argentina obtained the brightest bubble ever reported in sonoluminescence. The phenomena known as single bubble sonoluminescence was discovered by Gaitan in 1989. In his experiment a bubble was levitated at the center of an acoustic resonator and it emits light pulses at the frequency of an acoustic field. In this work Urteaga and Bonetto were able to get light intensities 300 times higher than in Gaitan´s experiments. They used as a resonator a spherical glass shell 250microns in thickness (approximately twice the thickness of a human hair) and 90mm in diameter filled with almost pure sulfuric acid. They were able to fix the bubble at the resonator center using two synchronized acoustic waves (one with a frequency of 33kHz and the other of 165kHz). They also present a state of the art theoretical model to explain the main features of the experimental results. The paper will be published in the February, 22nd 2008 issue of Physical Review Letter.

***



LL11279

Cooper pairs of entangled atoms

We propose a method to create large Cooper pairs of bosonic atoms in an optical lattice.
Cooper pairs are responsible for the effect of superconductivity. To date, they have been only produced using fermions, either electrons or fermionic atoms.

Our proposal starts with an optical lattice, a periodic potential created by light, in which tightly bound entangled pairs of bosonic atoms are loaded (setup.jpg). This quantum state has been realized experimentally in 2007. We propose to lower the strength of the optical lattice that traps the pairs, which makes the atoms spread across the lattice while pairing and entanglement between them is preserved.
This spreading is shown in spreadpairs.jpg, where the pair wavefunction is plotted as a function of time.
The final pairs have a size of a few microns, about 10,000 times larger than the atom diameter.

***

LJ11271

Nonlinearities make a quantum system more insensitive to
environment when thermal fluctuations are increased.


Nanoscopic devices could in the next future keep advantage of the
quantum peculiarities in order to significantly improve the
computational performances. In spite of these potentialities,
the noise degradation in quantum computers, known as quantum
decoherence, has devastating consequences and makes their
application impossible at present. Important sources of noise
are the thermal fluctuations. Since such fluctuations are reduced
by decreasing the temperature, one could conclude that the quantum
decoherence could be minimized by sufficiently cooling the
environment of the quantum device.

In our work, we study two simple models of nonlinear environment and
show that the increase of temperature can reduce the decoherence
rate. In fact, although the fluctuations grow with the temperature,
the increase of thermal energy changes the frequency spectrum shape of
these fluctuations via the nonlinearities and makes the environment
off-resonant with the device. Thus, although the fluctuation amplitude
grows with temperature, the device becomes more insensitive to
them. The nonlinearities at nanoscopic scale could be relevant for the
development of quantum computers.


***

LE11622

Deciphering the relation between geometry and time-delay
for harmonic light emission, molecular alignment and orbital symmetry.


In this paper a quantum theory is developed that sucessfully provides a
unified interpretation of the hitherto unexplained intensity modulations of
harmonic radiations from coherently rotating linear molecules and their
instantaneous alignment. This has become possible by correlating for
the first time the simultaneous effects of the two control parameters that are
used in the experiments, namely, the relative polarization angle and the
time-delay between a "pump" and a "probe" pulse. The first of these two
femtosecond pulses sets an initially thermal ensemble of linear molecules
in quantum coherent rotations, while the second pulse induces the harmonic
light emission from the rotating molecules. A control of the alignment of
the molecular axes is of direct interest, for example, in sterioscopic
chemical reactions. Our theory also correlates the molecular orbital
symmetry with the presence (or absence) of a "magic" polarization angle. This
signature can now be used directly to identify the orbital symmetry of unknown
linear molecules, both inorganic and organic. Such knowledge coupled with the
explicitly anlytic form of the theory, provides a qualitative advancement
toward a full solution of the currently hotly pursued inverse problem of
"molecular imaging" i.e. construction of the molecular orbitals of an unknown
probe molecule from the experimental data.

***

LG11498
Ultra-shallow molecular potential

Molecular vibrational states supported by a potential curve
with a sub-GHz well depth have been experimentally observed.
This ultra-shallow potential is formed due to
avoided crossings of potentials among a hyperfine structure.
This state is a novel kind of so-called purely long-range states,
which have the inner classical
turning points at long internuclear distances of a few nanometer.
So far, purely long-range states have been experimentally observed for
alkali-metal atoms and helium. These states are formed due to
fine structures, and the depths of the potential wells are much deeper.
In this Letter, ytterbium (Yb) atoms are used to observe this
hyperfine-structure-induced purely long-range state.
Yb is the only atom for which a spinless
Bose-Einstein condensation has been realized, and
attracts considerable attention as a future optical frequency standard.
High-resolution photoassociation spectroscopy of the intercombination
line ($^1S_0 - ^3P_1$) of laser-cooled $^{171}$Yb atoms has been demonstrated,
and four rovibrational levels of $^{171}$Yb$_2$ are successfully
assigned to this state.


***

LH11691

- Testing gravity with ultracold atoms -


Experiments investigating gravity using quantum probes are rare. In two
experiments conducted by the group led by Guglielmo Tino in Firenze
(Italy), atomic probes based on quantum interferometry with laser-cooled
atoms are used to determine the value of the Newtonian gravitational
constant and to measure gravity with micrometer resolution. Recent results
were just published in two articles in Physical Review Letters [1,2].

The Newtonian constant of gravity G is one of the most measured
fundamental physical constants but still the least precisely known. The
weakness of the gravitational force and the impossibility of shielding it
make a precision measurement of G extremely difficult. Improving the
knowledge of G has a metrological interest and is very important for the
key role that it plays in several theories in physics. From the time of
Cavendish experiment in 1798, the preferred method has been the torsion
balance, in which the restoring force of a twisted fibre balances the weak
gravitational torque produced by the attraction between macroscopic test
masses. In the new experiment [1] in Firenze (MAGIA, funded by INFN),
microscopic atomic probes and an atom interferometry detection scheme are
used to measure this elusive fundamental constant. Freely falling samples
of laser-cooled rubidium atoms are used in an atomic gravity gradiometer
to probe the field generated by nearby tungsten source masses. The
achieved precision is of the order of a part per thousand and
uncertainties below the 100 ppm level, which is the present limit, are
within reach.

The second experiment [2] is addressing the possibility of measuring
gravity with high precision at extremely small distances, that can also be
interpreted as a test of the constancy of the value of G over different
spatial scales. Using laser-cooled strontium atoms in a modulated vertical
optical lattice, Wannier-Stark intraband transitions producing a coherent
delocalization of atomic wavepackets were detected for the first time
with high resolution. This is an important result on its own and for the
implications to experiments in different fields. Gravity was indeed
determined with ppm precision and micrometer resolution. This enables new
tests on small-scale forces and gravity can be investigated in regions so
far unexplored searching for deviations from Newtonian gravity predicted
by theories beyond the standard model.

Friday, February 15, 2008

2-15-08

LJ11347 Pryamitsyn
Scientists uncover new insights into transport of probes in crowded matrices

Scientists from University of Texas at Austin have uncovered that the
motion of small probes in crowded matrices can happen in more ways
than previously envisioned. Many critical biological processes rely
on the movement of units such as proteins and viruses through crowded
environments such as in the cytoplasm and nucleus of the cells. A
fundamental question is "What is the relationship between the
transport characteristics of such (small) units and the properties of
the medium?" Conventionally, it has been viewed that entities smaller
than the pores of the permeating matrix move by sneaking through the
static pores of the matrix, whereas moieties larger than the pores of
the matrix have been assumed to behave similar to particles moving in
thick, gooey fluids. Drs. Pryamitsyn and Ganesan at The University of
Texas at Austin have used computer simulations on a model system to
show that a novel, intervening regime can occur in the transport of
small probes in crowded matrices. They demonstrate that for probes
larger than the pore sizes but smaller than the size of the network
polymers, the motion of the matrix environment itself may open and
close spaces and facilitate the movement of the probes. Many earlier
experiments have indeed observed that transport properties of probes
may not always be rationalized within the two conventional regimes.
Drs. Pryamitsyn and Ganesan hope that their findings would shed light
on some of those results and even possibly change the way the motion
of small units are viewed in relationship to the properties of the
crowded environments they move in.

***

LL11317
The transfer of electrons in or out of the molecule, the heart of an oxidation-reduction process, modifies not only the electronic properties of the molecule, but can also drastically influence its magnetism.

In our letter we show that it is possible to manipulate the magnetization direction in organic magnetic molecules by changing their oxidation state: a basic mechanism, which is common for the biomolecular world.

The oscillatory behavior of the easy axis of magnetization as a function of the oxidation state of the molecule predicted by our calculations could lead to revolutionary technological applications, e.g. it would allow combining the spin-single electron transistor principles with the magnetoresistive biosensor. In such a device an additional control over the transport mechanism can be achieved by using interplay between charge state and the magnetization direction in the channel.

***


LG11339
Doping Atomic Wires for Band Gap Engineering

Doping is the key technique in electronic and optical devices. Although this technique is also crucial for any nano device fabrication, its application into nano-scale materials has been challenging due both to fundamental and technical reasons. In this letter, we successfully demonstrate an extreme application of doping even beyond the conventional nano-scale materials, that is, doping atomic-scale wires of only one-nanometer width. The atomic wires are self-assembled on a silicon surface by gold atoms and extra silicon atoms are deposited on as electron doping adsorbates. The gold atomic wires are imbedded into the surface silicon layer to have a robust structure and a well defined one-dimensional metallic band structure with a strong dispersion. The one-dimensional band of gold atomic wires, measured by angle-resolved photoemission, changes from a fully metallic to semiconducting one with its band gap linearly tunable up to about 0.5 eV as the silicon dopant density increases. This paves a way to create novel atomic scale devices based on wires with engineered band structure.

***

LM11144

Terahertz Generation from Optical Pulses in a Nonlinear Negative
Refractive Index Metamaterial


"In this paper, the authors have theoretically discovered that terahertz
waves can be generated from optical pulses in a nonlinear negative
refractive index medium/metamaterial. Terahertz radiation has a variety
of important applications including imaging, sensing, security and
spectroscopy. The nonlinear phenomenon that enables this conversion is
long wave short wave resonance and occurs when the group velocity of a
short wave (e.g. optical) is equal to the phase velocity of a long wave
(e.g. terahertz). This resonance phenomenon was first studied in fluids
and plasmas over 30 years ago. In negative index metamaterials, it is
possible to satisfy the resonance condition and generate long waves when
the short wave lies in the region of negative index. In addition to the
significant application of optical to terahertz conversion, other
phenomena that may be realized are solitary waves and photonic
turbulence. Long wave short wave resonance brings a new horizon to the
research and applications of the exciting area of metamaterials."

***

LB11396
Stable liquid Hydrogen at High pressure,
discovered by generating noise with the computer.



The fundamental laws of physics and chemistry can be now put in a computer
for a realistic simulation of matter, and for the discovery of new phases that
are not always accessible by experiments, as to go inside the
inner core of Jupiter where the pressure can be up to 300Gpa, namely
three million times the standard atmospheric pressure.
In this work we show that, by generating fictitious
noisy numbers (pseudo-random numbers) with common computers,
we can perform accurate simulations,
by means of the so called quantum Monte Carlo technique,
and exploit very important correlation effects between electrons.
A quantum many body system of up to 128 Hydrogen atoms and 128 electrons
interacting by means of Coulomb forces
and for a time of about 2ps (1ps=10^{-12} sec), has been
simulated at 400K and 300GPa.
Though 2ps may appear a very short time,
it is meaningful for a computer simulation of condensed matter phases.
Indeed in our calculations we have been able to melt
the most plausible high-pressure solid phases, strongly supporting
the thermodynamic stability of the liquid phase in high pressure Hydrogen.
Before this work it was not possible to follow the faithful dynamical
evolution of the quantum mechanical electronic wave function with so many
electrons, or without doing ''mean-field'' like approximations where
each electron see the effect of the other ones only on average,
namely wthout feeling their correlation, seemingly very important
at this very high pressure.

We believe that our work open a new frontier for the discovery of novel
phases of matter with realistic computer simulations.

***

LH11026
Cloaking Goes Multi-Band!

There has been a great deal of interest in the subject of electromagnetic cloaking in the scientific communities and news media in the past few years. The currently available techniques for cloaking have so far been limited to a given fixed frequency and narrow bandwidth of operation. Now, in their upcoming theory paper in Phys. Rev. Lett, researchers from the University of Pennsylvania have proposed a technique to obtain the cloaking effects simultaneously at two (and in principle more) frequencies. Their method, which is derived from their earlier approach to cloaking [Phys. Rev. E 72, 016623 (2005)], is based on the mechanism of scattering cancellation by metamaterials and plasmonic media, and it is achieved by utilizing layered plasmonic covers. These cloaks may be isotropic and homogenous, and the effect is relatively robust to variations in the object and cloak parameters. This may pave the way to multi-band cloaking, with various exciting possibilities and applications.

***

LJ11439
A scalable method to detect quantum critical points

Phase transitions describe sudden changes in
the properties of a physical system when an external control
parameter changes through some critical value. If the system under
consideration is a quantum mechanical system in its ground state,
i.e. at zero temperature, and the phase transition occurs as a
function of a non-thermal control parameter, we speak of quantum
phase transitions (QPTs). In this paper we demonstrate a technique for studying QPTs
by coupling the system to a probe qubit, i.e., a two-state system.
It uses directly the increased sensibility of the quantum system
to perturbations when it is close to a critical point.
Using a nuclear magnetic resonance (NMR) quantum simulator, we demonstrate this measurement
technique for the QPTs in an Ising
spin chain. Only one qubit is measured for the detection of the critical points,
independent of the size of the simulated quantum system. Hence this
method scales very favorably with the size of the system

***

LJ10838
FRACTALS: THE ROLE OF THE UNDERLYING GEOMETRY

Fractals are geometric entities of fractional dimension. While our common perception shows us two-dimensional objects such as planes or three-dimensional bodies in the everyday experience, these entities can be found everywhere in the physical world. Examples of fractals are the coasts of islands and continents, crystal surfaces, tumors, fire fronts, and even abstract paintings. Studying the geometrical properties of these systems sheds light on their physical properties, and helps us understanding important phenomena such as crystal and tumor growth. Fractals are “rough” versions of objects of lower integer dimension, for instance, a fractal of fractional dimension 1.1 is a rough counterpart of a line. What we have shown in this article is that the geometry of this lower dimensional space affects dramatically the dynamical properties of fractals. Curved spaces induce a completely different behavior than the extensively studied planar ones. These considerations affect strongly the way of analyzing semiconductor surfaces, due to the presence of circular atom or vacancy islands formed on them, or growing tumor spheroids, just to cite a couple of examples of a large practical importance. The long time goal is to be able to understand the basic growth mechanisms and even to control them.

***

LK11469
"Periodic electron structures in gases: a fluid model of the 'Window' phenomenon"



The seminal experiment of Franck and Hertz carried out almost one hundred years ago helped lay the foundations of modern quantum and atomic physics but surprisingly, what really happens in the experiment remains poorly understood and is sometimes even misrepresented in the physics literature at large. Current is past through a gas, and for the experiment to work as planned, periodic structures reflecting quantization of the atoms must develop. They are observed to do so only in a certain range ('window') of well-defined voltages and gas pressures. This paper explains in the simplest possible terms, consistent with physical rigor, the origin of this 'window' , and provides the theoretical machinery for dealing with similar structures which occur in modern day low temperature plasmas.

***

LM11709 and LM11738


In a two papers that appear back-to-back in Phys. Rev. Lett, physicists
from The University of Texas at Austin report the realization of general
methods for trapping and cooling of atoms and molecules
. These methods
will be applicable to most of the periodic table as well as many molecules.
To date, cooling atoms near the Absolute Zero has been accomplished using
laser cooling. Despite its enormous success, laser cooling has been
limited to a small set of atoms in the periodic table due to the
requirement for a closed cycling transition that is accessible with lasers..

The Texas group, led by Professor Mark Raizen, stopped atoms by passing a
supersonic beam through an "atomic coilgun" and cooled atoms using
"single-photon cooling".
The starting point for the work is the supersonic beam, a source of cold
atoms that are also moving very fast in the laboratory frame. The beam is
mostly comprised of noble gas atoms that can be seeded with any species
that has a permanent magnetic moment. These paramagnetic atoms are then
stopped by a coilgun, a series of 64 electromagnetic coils that create
large pulsed magnetic fields. The coilgun stops atoms by making them climb
a magnetic hill which is removed before the atoms have time to roll off and
regain speed. Key to the success of the coilgun is the use of supersonic
beam technology developed by Raizen's collaborator, Professor Uzi Even,
from Tel-Aviv University. This method will work on any paramagnetic atom
or molecule which can then be held in a magnetic trap. To further cool the
trapped atoms or molecules, the Raizen group developed the method of
"single-photon cooling". This is based on the construction of a "one-way
wall of light" proposed by the same group in earlier publications. An
ensemble of atoms is cooled from a magnetic trap into an optical tweezer,
where each atom scatters on average only a single-photon. The method does
not require a closed cycling transition, and hence is completely
general. It is also a direct experimental realization of the concept of
information cooling as introduced by Leo Szilard in 1929 to resolve the
paradox of Maxwell's demon.

This combination of general methods opens many new directions in physics
and chemistry. The Raizen group plans to focus on trapping and cooling of
atomic hydrogen isotopes, primarily atomic deuterium and atomic
tritium. The latter is particularly important towards determination of the
neutrino rest mass, one of the most pressing questions in physics
today. On the other extreme, this work opens the possibility for trapping
and cooling of molecules, which will enable the study of ultracold
chemistry and precision molecular spectroscopy.

***

LM11265
De Sitter Universe goes Quantum

When well-known Dutch physicist and astronomer Willem de Sitter in 1917
came up with a new solution to Einstein's recently discovered equations of
general relativity, he could hardly have anticipated its enduring appeal
as a model of the real, expanding universe. But what would have been
impossible for him to even contemplate was that his de Sitter universe -
as it is now known - would one day be shown to arise from the most basic
principles of quantum theory, a theory not even developed at the time.
This is exactly what has been achieved recently by a team of researchers
from Denmark, the Netherlands and Poland. In their model of the universe,
tiny building blocks, which represent the "atoms" of space-time and
interact according to the laws of quantum theory and gravity, magically
organize themselves into a big lump of space-time which on macroscopic
scales looks just like de Sitter's universe. In an area of science often
regarded as esoteric, this work provides tangible evidence that not only
the material world, but also the structure of space and time can
ultimately be traced to fundamental quantum origins.

Friday, February 8, 2008

2-8-08


LM11654
Axion result all washed up

An anomolous report of a possible new particle is disproved by researchers
at Fermilab. The axion, a possible dark matter particle, was coined in the late
1970's after Axion brand detergent because it "cleaned up" some mysteries of
theoretical particle physics. In 2006, there was an anomolous positive signal that
an axion-like particle might have caused light to behave strangely in a magnetic
field. This observation motivated several world-wide experiments to try to
directly observe this possible new particle by seeing whether light could go
through the equivalent of a brick wall in a high magentic field.
In less than 1 year, with one of the smallest budget's for a recent Fermilab
experiment, a small group of researchers borrowed necessary spare parts including
a laser, powerful accelerator magnet, and circuit boards normally given away to high
schools to study cosmic rays. They have produced conclusive results that rule
out an axion interpretation of the anomolous signal reported in 2006. Their findings
appear in a Phys. Rev. Lett. article and online at gammev.fnal.gov.

***

LM11599
Engineering the mobility of molecules in small spaces

As civic planners and schoolteachers have long appreciated, the motion of cars on highways or children through hallways proceeds smoothly if lanes of traffic are formed. Engineers have now shown that a similar principle applies for the motion of fluid molecules in tiny channels. Specifically, computer simulations reveal that molecules can more easily move past one another if they first form "layers" aligned with the boundaries of the channels. Researchers have also discovered a way to determine which types of channel boundaries could promote the formation of the layers necessary for faster molecular transport. This fundamental advance could aid in the development of new technologies that rely on the flow of fluids through small spaces, including drug delivery devices, biological "lab-on-a-chip" components, and nano-imprinting tools.

***

LN11021
Measuring torsion components for the first time

For the first time, scientists have found a way to measure the size of
19 of the 24 quantities describing the peculiar warping of space and
time called torsion. This advance follows a theoretical investigation
into the effects that this spacetime warping has on particles.
Curiously, the strongest influence is on electrons, protons, and
neutrons, which have particular internal spin characteristics. The
effect on photons, which have very different spin behavior, is far
weaker. To amplify and measure the effects of torsion, one can study the
motion of large numbers of electrons with aligned spins, as has been
done using a spin-polarized torsion pendulum at the University of
Washington in Seattle. Alternatively, one can study the microwaves
emitted from atoms in a helium-xenon maser, such as the one at the
Harvard-Smithsonian Center for Astrophysics in Cambridge, Massachusetts.
It can discern changes in the spin orientation of neutrons in these
atoms with astounding precision. Theorist Alan Kostelecky and
collaborators from Indiana and Northern Michigan Universities used
results from their study and from these experiments to place the
first-ever bounds on 15 components of torsion, and the best-ever bounds
on the only four torsion components that had previously been measured.

***

LZ10234
Quantum mysteries for everyone!

In our letter, we present a new Bell inequality for two parties with
two measurements of arbitrary many outcomes. The inequality can be
related to the known Collins-Gisin-Linden-Massar-Popescu inequality,
however, it is slightly more general but nevertheless much simpler. It
not only has a simple form, but also its proof is so simple that it is
understandable to everyone.
We investigate the maximal violation of this new Bell inequality.
Naively one would expected that the so-called maximally entangled
states, which are in a sense the most nonclassical states, lead to a
maximal violation of the corresponding Bell inequality. However, we
give strong numerical evidence that for more than two possible
outcomes the optimal states are not maximally entangled. In contrast
to earlier work in this directing we also considered the case of
Hilbert spaces of dimension higher than the number of outcomes.
Further, the simple form of the new inequality enables us to extend
the numerical search to a very large number of measurement outcomes.
Interestingly, this gives evidence for a new “quantum Bell inequality”
which seems to be exhibited for those optimal states in the limiting
case of infinitely many outcomes.

***

LL11096
Single mode heat rectifier: Controlling energy flow between
electronic conductors



In an electric rectifier electron current between metals is restricted
to one way flow. Can we analogously rectify the energy current between
two, hot and cold, metals?

We describe here a simple model for thermal rectification between
electronic conductors, assuming the metals are coupled via an
intermediate radiation mode or through an electrically insulating
molecule, permitting only vibrational energy flow.

We analytically show that the onset of rectification in the system
is directly related to the nonlinearity of the electron gas dispersion
relation,
combined with some system asymmetry. When the metals have strictly
linear dispersion relation a Landauer type expression for the thermal
current holds, symmetric with respect to the temperature difference.
Spatial asymmetry can be practically introduced into the device by
using a metal-superconducting junction, or by applying a voltage bias
across the system.

Our electronic model can be mapped into a phononic picture
where the metals nonlinear dispersion properties translate into
anharmonic phonon-phonon couplings. Since dissipative reservoirs
typically contain nonlinear interactions, finite rectification of the
energy current between metals and dielectric surfaces is an inevitable
effect.

***

LK11746
High Capacity Hydrogen Absorption in Transition Metal -
Ethylene Complexes Observed via Nanogravimetry


Using a high resolution nanogravimetric method where mass changes on the
picogram level can be measured we have observed upto 12% by weight of
hydrogen (H2) absorption at room temperature in certain metal-carbon
complexes synthesized using ethylene as a precursor. While the maximum of
12 weight % is obtained with a titanium-ethylene complex many other
elements of the transition metal series complexed with ethylene show
significant hydrogen uptake as well. In addition to the large uptake we
also observe very rapid kinetics. The absorption process is completed
within ten to fifteen minutes of introducing hydrogen. By performing mass
spectroscopic analysis during the synthesis of these metal-ethylene
complexes we find evidence for a bound metal-ethylene species in the gas
phase which most likely is responsible for the large hydrogen absorbing
characteristic. This work is promising from the hydrogen storage
perspective since both ethylene and titanium are inexpensive and abundant.
Limited experiments performed to date where the sample has been heated to
120 degrees centigrade however have not revealed significant desorption.
Further, work along these lines as well as in nailing down the molecular
structure spectroscopically to better understand these materials is needed
before their promise for energy storage purposes can be realized.

***

LF11474

Biodiversity or Extinction?
How can cyclic dominance between three species support their survival?


Rock-Paper-Scissors is a game played worldwide by children:
Scissors cut paper, paper wraps rock, and rock crushes scissors.
This game is a fair play in the sense that the coin one
player loses, matches the gain of the winning player, so the
money is conserved and the bank neither loses or wins -
a zero-sum game in the economic language.
The game is also played by bacteria (E.coli) and
by lizards (Uta stansburiana), as has been
and studied extensively during the last decade.
But the way lizards and bacteria play in their
struggle for survival, is not fair, and,
moreover, lizards and bacteria play it differently:
While the total outcome of an interaction of
different strains is negative for the bacteria,
experiments indicate that the sum is positive
when two different types of lizards meet.
At this point a recent study in Physical Review Letters
by Jens Christian Claussen and Arne Traulsen
points out how the picture of such a game
is changed in well-mixed but finite populations.
If the sum is negative, survival would only
be possible from resource or spatial niches,
and in a well-mixed population of three species
all but one will go extinct due to fluctuations.
The picture changes if the outcome of the game
is positive, as for the lizards. Here the authors
demonstrated that for a positive-sum game
coexixtence is stabilized not only in the mathematical
limit of an infinite population, but even in a finite population:
Above a critical population size, which can be derived
analytically for several microscopic processes,
coexistence is stabilized. Such population sizes can be
of order 20 to several 100 and thus are not unrealistic.
Bacteria and lizards do not play a zero-sum game,
and in such a three-species system a positive-sum game
can sustain biodiversity.

***

LP10180
Electrons loose the face


Electrons in normal metals behave as free particles. They have effective mass and form a charged liquid known as Fermi liquid. However in new recently discovered materials, such cuprates (high-temperature superconductors) and ruthenates (rare-earth compounds) the electron’s behavior is drastically different. In the published paper it was shown that in cubic ruthenates electrons are loosing their personality. The matter arises because specifically in these materials these electrons have additional freedom, they may freely change atomic orbitals. In other words electrons are here additionally dressed by orbital fluctuations. These electrons are not anymore behaving as free individual particles but perform rather as teams, which are glued and covered in orbital dress. Electrons in such teams are acting together to form collective charge fluctuations in which individual electrons loose their faces. The evidence of this striking phenomenon and the collective behavior of electrons is presented in a detailed perusal of various experiments including Raman spectra, optical conductivity and Hall effect observed in cubic ruthenates, SrRuO3 and CaRuO3. It was also shown that as the result of this striking phenomenon a new state of matter - orbital (non-Fermi) liquid is emerging. The finding of this new state of matter is a unique manifestation of an important role of atomic degenerate orbitals in cubic ruthenates, and opens a new route to understanding of non-Fermi liquid metallic behavior in many others novel materials.


***


LG11163
HOT MOLECULES BROUGHT UNDER CONTROL WITH ULTRAFAST IONIZATION

Hot (room-temperature) molecules vibrate wildly due to thermal motion.
This vibrational motion could be harnessed to enhance or modify chemical
reactions, but since the motion is random each molecule is doing something
different. Trying to control this motion would be as difficult as herding
cats. Thus, most "coherent control" schemes start with cold molecules,
which are well behaved, but this makes possible applications much less
practical. In experiments involving room-temperature iodine molecules, we
have shown that by gently ionizing about half of the molecules, the
remaining neutral molecules are brought under control and they all vibrate
in unison. This "coherent" motion is striking revealed in data taken with
ultrafast (femtosecond) laser pulses in a "pump-probe" arrangement. (See
figure). Generally speaking, most laser interactions with molecules are
"reversible" and cannot handle thermal ensembles. In contrast, ionization
is "dissipative" which allows it to tame random motion. This method of
using ionization to control vibrational motion is closely related to a
process called "Lochfrass" which was recently demonstrated by another
group (Phys. Rev. Lett. 97, 103004 (2006)). In that work, initially cold
molecules were forced to start vibrating through weak ionization. Our
work opens up new ways to work with hot molecules.

***

LL11201
Slow dynamics in columnar discotic liquid crystals

In this work the assignment of the slow dynamics in discotic liquid
crystals pertinent to their long range organization is made. Discotic
liquid crystals based on hexa-peri-hexabenzocoronenes (HBCs)
("super-benzenes" due to their symmetry and aromatic core structure)
show record high charge carrier mobilities and find applications as
advanced electronic materials. HBCs substituted with flexible
aliphatic chains are known to self-assemble with the disc-shaped
molecules organizing into columns that further assemble into
two-dimensional arrays. This work revealed that these materials
exhibit "fast" and "slow" dynamics with intriguing temperature and
pressure dependencies associated, respectively, with the disc axial
motion and a collective re-organization of the columns. The latter
"breathing modes" are important for the stability of long-range
assemblies needed in electronics.

***

LM10902
The rough makes it smooth!

Would you believe that we should design rough surfaces to make them behave
in the smoothest possible way? In other words, would you ever imagine that
a rough surface may help in inducing a motion on the top of it, instead of
inhibiting the same? That, as a possibility, would indeed sound
unachievable, until we discovered from our recent study that specially
designed tiny water-transport channels (or pores) may achieve this
apparently impossible task by two simple mechanisms. First, confining
rough surfaces made of water-disliking materials may trigger the formation
of tiny bubbles adhering to the walls of narrow channels. This incipient
vapor layer acts as an effective smoothening blanket, by disallowing the
liquid on the top of it to be directly exposed to the rough surface
asperities. In such cases, the liquid is not likely to feel the presence
of the rough surface directly, and may instead sail smoothly over the
intervening vapor layer shield. Thus, instead of ‘sticking’ to a rough
channel surface, the liquid may effectively ‘slip’ on the same. Secondly,
the spontaneous formation of an electrically charged layer adhering to the
channel surface amplifies this tendency of slippage to a large extent, by
pumping the layer of fluid even more effectively along with the movable
charges. Based on this novel conjecture, we may design miniaturized
super-fluidic systems with an unimaginably high rate of liquid pumping,
without actually using any pumping device.

***

LL11056
The smallest crystal

Text books teach us that solid or liquid behavior are collective properties
of very large systems. But after cutting a crystal in two halfs it still
remains a crystal. So, how long can this procedure be repeated before
crystal behavior vanishes? Researchers from Kiel University in Germany have
solved this problem. The key was to pose the correct question which
adequately captures the nature of crystalline behavior and then derive the
proper quantity which one has to measure. Certainly, a crystal requires
regular arrangement of particles which have to be localized near their
lattice sites. But this is not enough: a crystal must also allow for its
abrupt destruction, when it is being heated or compressed. Thus, the
existence of a melting transition turned out to be the main criterion.
With the help of a novel sensitive quantity the researchers could clearly
analyze by computer simulations for what crystal size the melting transition
vanishes. The answer: the smallest crystal contains 5 particles.

***

LK11450
A watchful eye makes entanglement life longer


One of the most paradoxical phenomena of quantum theory, the quantum Zeno effect, allows to perform a further step in the implementation of new quantum technologies. Quantum computers and quantum networks crucially rely on exquisitely quantum properties such as entanglement. Entanglement is however very delicate. Any interaction of quantum systems with their surroundings destroys it. Our results illustrate how to fight
this deterioration using the quantum Zeno effect. The heart of the effect is that repeated and frequent measurements of the state of a quantum system, aimed at checking whether it is still in its initial state or not, freeze its dynamics. As the saying goes "A watched pot never boils".
Interestingly enough a similar conclusion holds if appropriate measurements are performed on the environment rather than on the system itself. Our results demonstrate that the entanglement of two quantum bits can be protected from the deterioration caused by the inevitable interaction with their environment simply by monitoring the environment. Instead of watching the pot we watch the stove flame. Specifically we consider two entangled two-level atoms in a lossy cavity and we prove that monitoring the population of the cavity mode leads to entanglement protection.

***


LJ11071
An exact solution for single-lane quantum Bose traffic

Everyone who has once been travelling in a car along a curved narrow road
knows the situation: the tractor ahead can not be overtaken without a
certain risk of terminating life. In a traffic jam, the 1-dimensional
character of a road is even more apparent. In the microscopic quantum
world atomic physicists knowadays create situations which resemble in many
ways the everyday rush-hour horror: Elongated, in the transverse
directions strongly confining laser traps constrain bosonic atoms to a
one-dimensional geometry to create so-called Lieb-Liniger gases studied
theoretically from the 1960s. Due to the inherent quantum nature of these
systems, the microscopic Bose-"cars" have a finite probability of passing
each other on this laser road, unless their effective mutual interactions
are in the so-called Tonks-Girardeau regime of impenetrable particles. The
authors of [LJ11071] recently found an exact solution for the
time-dependent Schrodinger equation for such gases. They described the
free expansion of an initially localised gas and showed that, as the
quantum traffic gets diluted, it approaches the "no overtaking"
Tonks-Girardeau limit - without the classical post-jam race between the
fastest roadsters.

-----------------------------------------------------

Figure:

Quantum traffic is described in terms of probabilities
of finding the "cars" at specific coordinates on the road;
figure shows one such probability in the intermediate stage
of the expansion.

***

LE11321
Universality behind Basquin's law of fatigue fracture

It has long been recognized by industry that structural components
exposed to periodic loading can fail after a certain number of
cycles even if the load amplitude is much below the safety limit. In
the everyday life the mysterious sudden breakdown of car or kitchen
equipment is a similar experience. The material seems to get
tired due to the long time usage and therefore the phenomenon is
called "fatigue". This subcritical failure typically occurs
unexpectedly and has been responsible for a large number of
airplane and railway crashes with considerable human loss. The most
striking quantitative feature of fatigue fracture is expressed by the
classical empirical Basquin law, which states that the lifetime
decreases as a power law of the load amplitude. The
Basquin law has remained unexplained since its discovery (1910) together
with the puzzling observation that the exponent of the power law
strongly depends on the material properties.

In order to understand the origin of Basquin's law, we worked out a
theoretical approach for the fatigue fracture of disordered
materials which provides a direct connection between the microscopic
fracture mechanisms and the macroscopic time evolution of fatigue. In
the model, material elements fail either due to immediate breaking or
undergo a damage accumulating ageing process. We found that
on the micro-level the competition of the two failure modes gives rise
to bursts of breakings which are characterized by universal power law
distributions. Astonishingly, the macroscopic Basquin law
appears to be the fingerprint of this scale-free microscopic bursting
activity, where material dependence enters only through the
specific damage accumulation mechanism. Furthermore we show that when
micro-cracks can heal leading to damage recovery, a threshold load
emerges below which only partial failure occurs and the material has
an infinite lifetime.

***


LG10991
Ear Reading Information from the Bumps in Your Ear

The external ears (pinnae) of many mammals - including bats and humans
- generate valuable information on the direction of an incoming sound
through direction-dependent acoustic diffraction by their intricate
shapes. In this paper, we establish an immediate and quantitative link
between the shape of the pinna and the direction information it
generates. This allows us to tell how much information a specific
pinna shape feature generates and in which way. We demonstrate the
utility of this approach by studying the role of an inconspicuous flap
on the inner wall of a bat pinna: We find that this flap alone
generates sufficient direction information to sustain - at least in
principle - the spatial accuracy observed in bats. We explain how this
is achieved through a fan-beam of sensitivity lobes which scan the
environment in a systematic fashion as the sound frequency is
changed. Since the basic principle of operation of the pinna is shared
by many mammals including humans, our methods could be applied widely
to mammalian and human hearing. Furthermore, features of comparable
relative size and geometry are common in bats as well as in other
mammals and could have similar effects to the flap studied here.


Attached figure: Fan-beam of sidelobes caused by the flap (a: flap
and sidelobes present, b: flap removed and sidelobes mostly gone).

***


LH11344
CAN DIAMOND BE A CONDUCTOR?

About twenty years ago, diamond, one of the best known insulators,
was found to exhibit substantial conductivity when exposed to air.
The origin of this intriguing phenomena has eluded explanantion and
remains uncertain. The resolution of this uncertainty is of immense
current interest since it could expand the technological use of
diamond into many new areas. The present paper makes a major headway
in this area using theoretical calculations by providing a mechanism
which could lead to the use of hydrogenated diamond surface as a
conducting material. According to our finding, the hydrogen adlayer
acts as a mediator in extracting electrons from the diamond
surface. This is achieved with the help of an additional layer of
water molecules (provided by the atmospheric air) adsorbed on the
hydrogenated diamond surface. The dipole moment generated on the water
layer adds an attractive component to the hydrogen layer which,
in turn, becomes an energetically favorable destination for the
electrons from diamond, leaving it with conduction holes.

***


LF11291
Stacking Matters

By and large, the electronic properties of LEDs and solar cells
fabricated from organic semiconducting polymers are determined by the
polymer chains themselves. However, how a bulk-heterojunction device
behaves may depend critically upon both how the chains are aligned and
how the internal vibrational motions mediate the breakup of excitons
into free carriers. Using a state-of-the-art fully quantum mechanical
time-dependent treatment of the combined electronic and vibrational
degrees of freedom for a model heterojunction system shows that subtle
shifts in the relative alignment of two pi-stacked polymers determine
how high vs. low-frequency motions within the polymer chains effectively
couple and drive the transfer of an electron from one chain to the other.
The computational treatment hinges upon the use of an electron/phonon
coupling scheme that finds the most significant vibronic interactions and
then adds in the remaining couplings through a hierarchical series of
equations. This allows what would ordinarily be an intractable computational
problem to be conveniently treated on a modest workstation. The authors
hope that their studies will spur a close investigation of the details of
the electronic couplings between molecules at the interface between
semiconducting domains, and will help to define new criteria for
material design.

***

LA11229
To buoy or not to buoy, both for a good reason

Intentional introduction of magnetic impurities or "dopants" into a
semiconductor often results in unwanted precipitates that are considered
detrimental to device performance. A conceptually intriguing doping
scheme, based on the combination of dopant trapping and surfactant
action, has now been shown to not only produce a precipitate-free
germanium semiconductor but also to transform the host germanium into a
surprisingly strong ferromagnet.

To make a semiconductor such as silicon or germanium magnetic for
spintronic applications, one intentionally introduces magnetic
impurities, such as manganese. Of course, it would be highly desirable
if the semiconductor could stay magnetic up to at least room
temperature, but this typically requires excessive manganese levels of
at least a few percent. Such high doping levels are detrimental to the
structure and properties of most semiconductors and, consequently, to
their device performance.

In Physical Review Letters of Feb. ??, 2008, Zeng and coworkers
establish subsurfactant epitaxy as a conceptually new approach for
introducing manganese as a magnetic dopant into germanium. The result is
a substantial enhancement of the magnetic transition temperature, along
with a significant reduction of the impurity levels needed for
establishing magnetism. The crux of the method is to suppress the
thermodynamically favoured formation of clusters and precipitates. The
authors devised a kinetic pathway in which manganese atoms are
intentionally trapped at low temperature below the surface of a
germanium crystal. The crystal is subsequently warmed to slightly above
room temperature and covered with additional germanium atom layers.
During this capping process, trapped manganese atoms become unleashed
and display amazing buoyancy. Their buoyancy is driven by the energetic
preference of the manganese atoms to remain one atomic layer below the
surface, as was predicted in a Physical Review Letters paper a few years
ago. In a way, the "floating" manganese atoms preferring subsurface
sites behave like the surfactant molecules in laundry detergents
floating at the water surface. This is the reason the authors dubbed
their growth method "subsurfactant epitaxy."

Not all atoms manage to stay afloat, however. Some manganese atoms
remain trapped inside the film, but luckily these settled atoms end up
being distributed evenly throughout the film, becoming magnetic dopants.
The resulting doping levels of order 0.25% are normally considered too
low for ferromagnetic ordering; nonetheless the films are still magnetic
at room temperature, an observation that is striking in its own right.
Whatever the underlying mechanism of the surprisingly strong magnetism
may turn out to be, subsurfactant epitaxy promises superior dopant
control in magnetic semiconductors and other semiconductor applications
that require doping levels above the thermodynamic solubility limit.

***

LL10927
Another promising candidate in tomorrow's quantum key distribution systems

So far, an attenuated laser is mostly used as the light source in quantum
key distribution systems. In this paper, we experimentally demonstrate
that a sub-Poissonian distributed heralded single photon source from
parametric down-conversion processes will be another promising candidate
when combined with the so called decoy state method. At first, by
comparing with other practical schemes in numerical simulations, we show
that our scheme using heralded single photon source based on decoy state
method can overcome all of them, either in a secure key generation rate or
in a tolerable total loss, and its performance can even come close to an
ideal single photon source, when a proper heralded single photon source
being used. Then we realize this scheme in experiment, and in principle
demonstrate the advantages of it with our present high lossy system.
Besides, our scheme does not pertain more costs or technological
requirements than any other practical scheme. Therefore, it should be very
competitive in the implementation of the quantum key distribution in the
near future.

***

LP10180
Extinction of electrons and formation of orbital liquid in Cubic Ruthenates.

Electrons in normal metals form a fundamental state of matter known as Fermi liquid. Inside such a liquid the Coulomb electron-electron interaction vanishes and electrons are free although have lighter or heavier effective mass. For half a century, the Fermi liquid idea played a pivotal role in understanding electronic behavior in metals. However, the discovery of new materials, such as high-temperature superconductors and rare-earth compounds with qualitatively different properties has forced the emergence of a new paradigm. In this paper, a detailed perusal of various experiments including Raman spectra, optical conductivity and Hall effect observed in cubic ruthenates, SrRuO3 and CaRuO3, has been performed. Then, deep underlying anomalies in a broad variety of their physical properties have been revealed and shown that strong, multi-orbital electron-electron interaction is leading to extinction of the electron-like quasiparticles, which are elementary excitations of the Fermi liquid and the signature of the Fermi liquid. As the result a new state of matter - quantum orbital (non-Fermi) liquid is emerging. The comparison with existing experimental data shows that the proposed orbital liquid provides a quantitatively accurate description of these data and all similarities observed in these materials. The finding of this new state of matter is a unique manifestation of an important role of electron-electron interaction and orbital fluctuations in ruthenates, and opens a new route to understanding of non-Fermi liquid metallic behavior in many others new materials.


***


LG11986
Estimation of Friction of a Molecule on a Surface by using Hammer Atoms

The friction of a single molecule chemisorbed on a surface is a very
fundamental property and plays a crucial role in diverse applications at a
nano-level or a molecular level since it affects the formation mechanism of
self-assembled molecular films and surface-bound nanostructures, as well as
the diffusion rates and hence the reaction rates of chemisorbed adsorbates
in catalytic reactions. However, studies of molecular level friction have
been limited to physisorption systems at present. In this report, in order
to investigate the friction of CO molecules on a surface, we used a newly
developed method, in which energy-controlled Ar atoms collide with CO
molecules on a stepped surface to displace CO molecules from initial
terrace sites to final step sites and the number of CO molecules at step
sites is compared with classical molecular dynamics simulation results.
Using the estimated friction, the relation with the adsorption dynamics,
the jump length and lifetime of translational motion is discussed.

***

LH10869
Carbon-Based Semiconductors Show Unique Sensitivity to Magnetic Fields

The amount of electrical current flowing through organic (carbon-based) semiconductors can be strongly modified by a magnetic field, an effect called magnetoresistance. In this paper, we report experiments demonstrating the unique property of organic semiconductors to show an inversion of magnetoresistance, i.e., in one set of conditions, the current through an organic semiconductor may increase when a magnetic field is applied, but small changes to the temperature, voltage or thickness of the organic semiconductor can cause the current to decrease, instead. Additionally, the authors apply the MIST model (magnetoresistance by the interconversion of singlets and triplets) they developed to describe the quantum mechanical phenomena responsible for the increase or decrease of current in the presence of a magnetic field. In contrast, electric currents flowing through inorganic semiconductors used in common microchips, such as silicon or gallium arsenide, are largely insensitive to magnetic fields.

***


LK11639
Interferometry: atoms get closer to photons

A step forward in high precision interferometry has been realized by employing for the first time non interacting atoms in a Bose Einstein condensate, the closest analogous to photons in a laser.
In the last 90 years optical interferometry has enormously contributed to the development of both experimental and theoretical physics. Interferometry is not only limited to photons but can be performed implementing massive particles, allowing high precision measurement of gravitational and inertial forces. The recent realization of Bose Einstein condensation, the matter wave analogous of the optical laser, has produced much excitation in the scientific community due to the diffuse expectation that this discovery would have led to a revolution similar to the one produced by lasers in the field of optical interferometry. However this didn’t happen because atoms, contrary to photons, experience mutual interaction which, at the high atomic density achieved in typical condensates, leads to a rapid destruction of the interferometric signal (A).
An experimental team at LENS, University of Florence, has now succeeded in performing an interferometry experiment with a condensate of potassium 39 atoms, where the deleterious effects of the interactions are cancelled. Applying a proper external magnetic field, the collisional properties of the atoms can be tuned at will and the interactions even cancelled. The sensitivity of the interferometer results enormously increased, achieving a higher contrast of the interference fringes (B). The technique developed in this work paves the way towards the realization of a new generation of sensors based on atom laser interferometry.

***

LL10945
Chaotic coordinates for chaotic dynamics

The classical approach to the study of (Hamiltonian) dynamical systems is to
adapt a coordinate system to the dynamics itself. This is like stretching and
squeezing a map (perhaps a map made from elastic) until all the roads and
streets are straight. This approach works when the dynamics itself is
regular; however, for chaotic behaviour one must employ chaotic coordinates.
An article to appear in Physical Review Letters adapts a coordinate system to
the invariant "signposts" of the fractal dynamics. Not even chaotic
coordinates can straighten chaotic dynamics, but chaotic coordinates can
separate out the almost-straight dynamics from the seemingly random chaos.
This effectively solves the problem of transport in chaos, with the (fractal)
devil's staircase transport profile naturally emerging.

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LD11801
Swimming in circles

It is generally believed that in order to generate waves, a small
object (like an insect) moving at the air-water surface must exceed
the minimum wave speed (about 23 centimeters per second). In this
letter, we show that this result is only valid for a rectilinear
uniform motion, an assumption often overlooked in the literature. In
the case of a steady circular motion (a situation of particular
importance for the study of whirligig beetles), we demonstrate that no
such velocity threshold exists and that even at small velocities a
finite wave drag is experienced by the object. This wave drag
originates from the emission of a spiral-like wave pattern. The
results presented in this letter should be important for a better
understanding of the propulsion of water-walking insects. For example,
it would be very interesting to know if whirligig beetles can take
advantage of such spirals for echolocation purposes.

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LL11172
Strain-controlled electrical behaviour in oxide thin films

In this paper, we reveal the extraordinary sensitivity of the electrical
conductivity of La0.7Sr0.3CoO3 films towards an elastic biaxial strain.
Reversible strain control of the resistance of epitaxially grown films by
about a factor of 10 at room temperature raises hopes for the application
potential of such perovskite cobaltites being related to the colossal
magnetoresistance manganites.Thin films of La0.7Sr0.3CoO3 have been
epitaxially grown on various substrates inducing tensile or compressive
in-plane strain up to 2%. A piezoelectric substrate has been employed for
reversible strain control. Strain-dependent electrical conductivity and
magnetization data of the films are presented. We find an extreme
conductivity decrease by 8 orders of magnitude under tensile strain and
prove this strain effect using measurements under reversible strain.
Further, a microscopic mechanism is proposed. We believe that this is the
first observation of the huge strain influence on the electrical nature of
doped perovskite cobaltites. It may initiate research activities in this
material belonging to the family of strongly correlated electron compounds,
which bear the promise of a new oxide electronics.

***

LL11215
Squeezing Waves through Narrow Tight Channels

Common sense suggests that it is difficult to squeeze light and other electromagnetic waves through extremely tiny bottlenecks. However, in their earlier theoretical papers [Phys. Rev. Lett., 97, 157403 (2006), Phys. Rev. B., 76, 245109 (2007)], Silveirinha and Engheta showed that these bottlenecks may be overcome, provided that the channel is filled with metamaterials with near-zero dielectric constant wherein waves passing through suddenly speed up to infinite phase velocities and squeeze through with near perfect transmission. Even more curious and counterintuitive is the fact that in this scenario the narrower and tighter the channel is, the better the wave may tunnel through! Now, two groups, Smith’s group from Duke University [Phys. Rev. Lett., 100, 023903 (2008)] and Engheta’s group from University of Pennsylvania [Phys. Rev. Lett., LL11215, to appear on Feb 1], have independently verified experimentally this anomalous phenomenon at microwave frequencies, using two different approaches. These findings confirm that materials with near-zero dielectric constant may provide useful means for connecting two waveguide sections at any angle and thus re-routing and re-directing electromagnetic energy through bending waveguides, sending waves through a very tight region, and designing low-reflective waveguide junctions, with potential applications in microwave component design, nanophotonics, and optical routing.

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LH11449
Multiwalled carbon nanotubes: the thicker, the softer

Size matters for the mechanics of multiwalled carbon nanotubes (MWCNTs).
It has been known for some time that MWCNTs often wrinkle under
deformation exhibiting the so-called rippling deformation pattern, which
makes MWCNTs much softer. Through large-scale multiscale simulations we
have characterized with a power law the softer wrinkled response, and
showed that the transition strain between the super-stiff behavior
attributed to MWCNTs and this softer regime scales as the inverse of the
tube diameter. Thus, the tera Pascal Young’s modulus can be fully
exploited in devices and materials only for moderately sized tubes.
Similarly, in interpreting experiments or designing devices, the
classical Euler-Bernouilli beam theory can only be applied to such
tubes. The elasticity of thicker tubes is nonlinear, typically display
mixtures of wrinkled and unwrinkled sections, and often exhibit
hysteretic mechanical behavior.

***

LH11195
Sticky obstacles to intramolecular energy flow


Poincare, when defeated by the task of following the intricate way
chaotic orbits behave, especially in multidimensional systems, pinned
his hopes on periodic motions by stating farsightedly: "In fact, what
makes these periodic solutions so precious to us, is that they are, so
to speak, the only breach through which we can try to penetrate in a
place which, up to now, was thought to be inaccsssible". His serendipity
has been proven once more in a surprising context, namely chemistry.
Chemical reactions usually proceed through a complex choreography of
energy flow processes that deliver the needed vibrational energy to the
reactive mode. The manner and time in which energy travels determine the
outcome of the reaction and the properties of the products. The
conventional wisdom concerning this fundamental process is that
vibrational energy travels very fast and, well before a reaction takes
place, distributes itself statistically among the modes of the molecule,
assumed to resemble an ensemble of coupled oscillators. However, there
is increasing evidence that the approach to equilibrium usually proceeds
more slowly than predicted by statistical theories and it is also
nonuniform, showing intriguing fits and starts. If the initial energy
were concentrated in one of the periodic motions of the molecule--a very
unlikely event-- it would stay there. It turns out, however, that
periodic motions influence the approach to equilibrium nevertheless,
because in their neighborhood the system mimics the dynamics of this
periodic motion, at least for a short time. In our recent Letter, we
translate this qualitative insight into vibrational energy bottlenecks
in molecules and describe how and for how long they trap energy, and how
they release it. The bottleneck mechanism could also be operating in the
dynamical evolution of Mars-crossing asteroids, superradiant
instabilities in atomic gases, and the approach to equilibrium in
systems with long-range interactions, to name a few higher-dimensional
systems.

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LL11260
Electron motion captured by a quantum stroboscope

We demonstrate an attosecond (1 as = 10-18 s) quantum stroboscope capable of guiding and imaging electron motion on a sub-femtosecond (1 fs = 10-15 s) time scale. Just as a conventional stroboscope can be used to freeze the beating of a hummingbird’s wings, revealing details that would normally be blurred, we use the quantum stroboscope to record the electron momentum distribution from a single ionization event. Our technique is based on a sequence of identical attosecond pulses that are used to release electrons into a moderately strong laser field exactly once per laser cycle. With this periodicity, each pulse creates an identical electron wave packet which adds coherently to the measured signal, with the result that the properties of an individual electron wave packet can be studied stroboscopically. In our paper we present an experiment in which we have used this technique to guide ionized electrons back to their parent ion and image the scattering event. We envision that coherent electron scattering from atoms, molecules and surfaces captured by the attosecond quantum stroboscope will complement more traditional scattering techniques since it provides high temporal as well as spatial resolution.