Friday, January 25, 2008

1-25-04

LJ11061
Novel scheme to beat the resolution limit in optical lithography

Our work shows how the standard resolution limitations in optical
lithography can be overcome using simple laser light of arbitrarily low
intensity. This represents a major advance over existing proposals based
on multiphoton absorption processes that require highly intense light
sources.
The miniaturization of nano- and semiconductor structures generated by
optical lithography is necessary to maintain the current pace of
technological innovation. However it is limited by the physical phenomenon
of diffraction, i.e., the bending of light. Up to now, the creation of
smaller feature sizes has been achieved by progressing to light with lower
wavelengths, which, however, is becoming exceedingly challenging.
Alternatively, it has been proposed that the diffraction limit can be
overcome by making use of a resist that absorbs N light quanta
simultaneously, thereby lowering the effective wavelength by a factor of
1/N. The drawback of the latter schemes up to now has been the demand for
very high light field intensities, making an implementation difficult.
We show that the standard diffraction limit in optical lithography can be
overcome even at arbitrarily low laser intensities. This advancement is
due to the fact that our scheme only comprises resonant light-matter
interactions.

***

LH11772
Tiny tendrils are robust feature of mixing liquid layers

To help understand what structures and flows exist in the
earth’s mantle, many experiments mimic motion in the mantle by
heating layers of liquid with different composition and
tracking how the liquids become mixed over time. In these
experiments the mixing proceeds very differently from mixing
in a single liquid layer, such as occurs when a pot of water
is heated over the stove top – here, liquid from a lower layer
is mixed into the upper by forming thin and tenuous tendrils
which puncture the interface. Surprisingly, these tendrils
persist over many convection cycles, despite the presence of
fluctuations in the temperature and large-scale flow.

In our paper, we examined how such thin tendrils can be so
robust in a theoretical analysis. Our work provides an
estimate for how quickly two layers become mixed by
translating insights from previous works on encapsulation and
entrainment flows on micron scales to large-scale mantle flow.
A crucial ingredient for the tendril to persist despite
fluctuations is a sharply curved topography at the interface
between distinct layers. The curved interface anchors the
thin tendril and isolates the flow within the tendril from
disturbances in the overall convection.

***

LF10949: No-ghost theorem for the fourth-order derivative Pais-Uhlenbeck
oscillator model.
Carl M. Bender and Philip D. Mannheim, to appear in Physical Review
Letters.

FIFTY-YEAR-OLD PROBLEM SOLVED -- MIGHT LEAD TO A NONSTRING APPROACH TO
QUANTUM GRAVITY


Carl Bender and Philip Mannheim have shown that the oscillator model
introduced
by Pais and Uhlenbeck in 1950 is a consistent quantum-mechanical system. For
over 50 years this model was thought to possess negative-probability states
(ghost states) that would render the model physically unacceptable. The
recent
work of Bender and Mannheim demonstrates that the long-accepted argument that
there are ghosts has a subtle flaw, namely the unquestioned presumption
that the
Hamiltonian for the model was Dirac Hermitian. Bender and Mannheim found that
the Hamiltonian belongs to a class of non-Dirac-Hermitian Hamiltonians
that are
symmetric under combined space reflection P and time reversal T. As
established
recently by Bender and collaborators, in such PT-symmetric theories all
states
have positive probability and thus the Pais-Uhlenbeck model is physically
viable. This result might have significant consequences for constructing a
theory of quantum gravity. Attempts to quantize the standard Einstein
theory of
gravity run into problems arising from uncontrollable infinities. String
theory
cures the infinity problem at the cost of extending space-time to ten
dimensions. Conformal gravity, a four-dimensional alternative to standard
gravity, has no infinity problem and is of interest because Mannheim has
shown
that it has no cosmological-constant problem. However, conformal gravity has
long been thought to have ghost states. Because the Pais-Uhlenbeck model,
which
is a prototype of conformal gravity, is ghost free, there is now hope that
one
may be able to construct a consistent four-dimensional theory of quantum
gravity.


***



LM10882


Experiments and physical model for rotating filaments explains the
transition to helical shape and describes a mechanism for propulsion
in microorganisms


Qian Bian, Thomas Powers and Kenny Breuer[1]
Division of Engineering, Brown University

We have been engaged over several years in a program to understand the
mechanics of flagellar motility. Many organisms, such as E. coli or
S. marascens propel themselves through water by means of one or
several helical flagella, each of which are rotated by a nanoscale
motor embedded in the cell wall. One (of many) questions that arise,
is how a long, flexible rotating filament might interact with the
surrounding fluid, what shape it adopts, and what thrust is generated.
We address this in the current Phys Rev Lett paper, using a scaled-up
experimental model in which a flexible rod is rotated in a tank of
very viscous liquid. We find that the rod has two states – a splayed
conformation at low torque and, at higher torque, a more compact
helical conformation which rotates at a higher speed and generates
more thrust. We compare our results with a mathematical theory, and
lastly, we present a simple model problem which is much simpler than
the complete flexible rod system, but nevertheless captures the
essential behavior and helps to explain the relevant physics. This is
an excellent surrogate for the behavior of flexible filaments such as
cilia or flagella, although there are significant differences between
the geometries in nature and this simple model problem. The results
may have engineering applications in the design and fabrication of
propulsion systems for microscale robotic "swimmers".

More background and videos can be seen at
http://fluids.engin.brown.edu/research/bacterial_summary.html


***


LF11529
"How bumps on whale flippers delay stall: an aerodynamic model"
by Ernst A. van Nierop, Silas Alben, Michael P. Brenner

Summary for non-scientists:


"
How Bumps on Whale Flippers Delay Stall

Experiments in a wind tunnel at the Naval Academy in 2004 showed that
the bumps on humpback whale flippers makes their stall behavior much
more gradual. All wings lose lift dramatically (stall) at some angle
of attack, and gradual stalling increases the range over which a wing
(or flipper) contributes to maneuverability, while decreasing the
unpredictability of lift forces near the stall transition. In this
paper, we demonstrate that basic concepts from aerodynamics go a long
way towards explaining how bumps work. The bumps modify the flow over
the wing, so that the troughs between the bumps stall first. By
averaging over all the bumps and troughs, the overall stall is much
more gradual. Applications include "unstallable wings" for special
purpose aircraft, and special wind turbine blades for turbulent-wind areas.
"

***

LB11135

Proteins stick and slide


We reveal how proteins attach to surfaces by mimicking the immersion of artificial materials (such as medical or dental implants) in biological solutions (eg blood or saliva). By exploiting experiments and theories developed to understand how materials grow we have identified the key steps specific to protein layer formation. In particular, this work shows that proteins first stick to the surface and then slide around until they meet each other and stick together to form a cluster of proteins. Surprisingly these clusters are also capable of sliding around, albeit at a slower rate, and combining together. This movement leads to a surface covered with isolated protein islands with large areas of bare surface. If proteins were fixed at the first point of attachment they would produce both a different environment for each protein molecule and a very different surface structure to that observed here. Such differences are significant as the initial protein structure influences how cells grow and potentially the integration or rejection of an implanted material. This new model of how proteins behave when attached to a surface will aid the development of better biocompatible materials and protein handling technologies.

***

LG10957


Finding the front and the back: how living cells start to move


Living cells move by assembling a branched network of so called actin
filaments (a protein) at their front. The same process can induce the
motion of viruses or bacteria, which invade other cells and move
inside their host cells by trailing an actin tail behind.

Recently biologists have succeeded in growing an actin network around
small beads, which then started to move like bacteria. The onset of
this motion is a fundamental step, called symmetry-breaking, which has
been occupying theoreticians and experimentalists alike.

We can show, that the elastic properties of the actin gel are at the very
heart of the symmetry-breaking. Through the growth process, elastic
stresses build up in the network, which in turn lead to a biased
growth: at one side of the bead the network gets thinner, whereas it
gets thicker at the opposite side, thus reducing the stress.

Furthermore we have shown by numerical simulations, that this biased
growth leads eventually to the evolution of a comet shaped network,
which can then cause the motion of the bead.

This discovery reveals that the interplay between mechanical
properties of biological materials and their growth might be at the
origin of motion in more complex systems, like bacteria, viruses or
cells of the human immune system.


***


LA10955
A Tug-of-War Suggests a New Paradigm in DNA Replication

Error-free DNA replication is central to the integrity of our genome.
Therefore, it is of considerable interest to study the action of the
proteins known as polymerases that replicate DNA. Through computer
simulations of the dynamics of a polymerase DNA complex at atomic
resolution we suggest that an intriguing dynamical coupling between
the cooperative motion of polymerase and DNA atoms may play a
significant role in aiding and abetting the chemical reaction
(chemical step) that leads to nucleotide incorporation during DNA
replication. We also suggest that the coupling is disrupted to varying
extents in a context-specific fashion, i.e., when the inserted
nucleotide is not complementary to the template base (mispair) or when
the template base in the DNA is oxidatively damaged. The emerging
paradigm from our studies is that the dynamical coupling can represent
a possible additional molecular mechanism in the polymerase to achieve
error control during DNA replication. As a direct consequence of the
dynamical coupling, our calculations show that the rate of the
chemical step is dependent on the applied force on the DNA (template)
strand and that the force-dependence is also context-specific, which
provides a direct route to validating our paradigm through
single-molecule experiments.

***


LL11465
Truly Surface Optics Provides Marriage of Optics, Electronics

We develop an approach to design the surface analogs of lenses, prisms,
and other optical elements to steer and reshape surface plasmon
polaritons (SPPs) similar to the way used to control optical beams, a
development that may resolve the communication bottleneck in modern
electronics. The SPPs are surface optical waves that result from the
coupling between the free electrons in metals or semiconductors and
optical radiation in surrounding non-conducting media. These waves,
capable to enable negative refraction of light, super-imaging, and
optical "cloaking", are considered to be the missing link between the
electronics and optical communications. Unfortunately, in conventional
(isotropic) media the "height" of the surface wave strongly depends on
the material. Therefore, at each optical interface 10-30% of the energy
of SPP scatters away (top panel in Fig.). In this work we demonstrate
that it is possible to use carefully designed combinations of
anisotropic media to ideally match the "height" of SPPs across the
system, completely eliminating the parasitic scattering (bottom panel).
This allows creation of surface electro-optical circuits where SPP
lenses, prisms, etc. can be controlled electronically. The potential
this opens for a merger of optics and electronics, and an entirely new
range of products based on such technology, is extraordinary.

***


LL11519
Ultracold fermions as a Butterfly Net

A simple problem in quantum mechanics is the study of a particle moving
on a lattice in the presence of a magnetic field. While the separate
effects of the lattice (band structure) and the magnetic field (Landau
levels) are well understood, their combination creates a very rich
problem where the allowed energies form the fractal known as the
Hofstadter Butterfly (see figure). Furthermore, each energy gap of the
butterfly was discovered to be characterized by an integer, which
determines the value of Hall conductance. This connection is one of the
most important applications of ideas from Topology (a branch of
mathematics) to quantum mechanics. So far it has not been possible to
test these predictions experimentally, as the magnetic fields needed to
create the Butterfly spectrum in a solid state system (thousands of
Tesla) are far beyond what is available (tens of Tesla).

In this work, we argue that both the Hofstadter butterfly, and
topological quantization of Hall conductance can be tested by an
experiment using ultracold Fermi gases. In ultracold atom experiments
periodic potentials known as optical lattices are routinely created by
laser beams, and rotating such a lattice simulates the magnetic field.
We show that, measurement of the density of atoms in such a potential
gives information about both the butterfly spectrum and the Hall
conductance of the system. Our results indicate that exotic states of
matter known as topological insulators may soon be realized experimentally.

***

LL10841

Beyond Einstein?

The mystery of the “dark matter” and “dark energy” required by Einstein’s general relativity to explain the available astrophysical data has led many physicists to suggest that this theory may not be a correct description of gravity on very large (galactic) scales. However, it turned out to be extremely difficult to modify Einstein’s theory and to remain consistent with what is observed. All known modifications are quite drastic in the sense that new “particles” or, how physicists refer to them, “degrees of freedom” are introduced, and it is then a major challenge to explain why these are not seen. This paper for the first time describes a large class of gravity theories that introduce no new degrees of freedom as compared to general relativity, with Einstein’s theory itself being a member of the class. The results of this work may lead to new insights on the description of our Universe on very large scales.

***


LJ11620
CHIRAL ORDER IN HELIMAGNETS

Chirality is a fundamental property of matter that can be found in
different systems like living organisms or subatomic particles.
The term itself indicates an object which is not superimposable to its
mirror image. Some magnetic systems are known to undergo transitions to
chiral order where the magnetic moments pass from random orientation to
ordered states.
In our Letter, we report experimental results on the molecular chain
compound Gd(hfac)3NITEt that provide evidence for an intermediate state
with a "chiral" order.
At high temperatures, this system is a mixture of right and left
hands â¿ magnetic corkscrewsâ¿ , i.e. finite segments of magnetic moments
disposed along the chain and turning clockwise or anticlockwise.
Decreasing the temperature, all the â¿¿magnetic corkscrewsâ¿ become
"right" ("left") hand, but the phase angle between two subsequent
magnetic moments is still random: this is the new "chiral" order
predicted thirty years ago by Jacques Villain.
Further decrease in temperature, at the helical transition the phase
angle between nearest neighbours becomes the same.
Summarising, it is possible to freeze a semi-ordered state taking
advantage of the unique properties of molecular chain magnets. Can this
particular order be found in other biological or nuclear system?

***

LK11340

ULTRA-SENSITIVE FORCE MICROSCOPE

A new principle to enhance the
sensitivity of force microscopes has been discovered. The principle
is based on the coupling between two flexural resonances of the
microscope. The coupling is induced by the simultaneous excitation of
those resonances. In this way, the microscope increases its
information channels from two to four, and thus its the ability to
extract information on the surface properties. The second mode can
probe the tip-surface forces in a way that is not hindered by the
feedback mechanism as it happens in conventional amplitude modulation
AFM. The predicted force sensitivity in this multifrequency force
microscope is 0.2 pN, which represents an improvement of about two
orders of magnitude. The microscope can be operated at forces below
those required to unfold proteins. Consequently, this microscope
could image in a gentle manner small soft-materials. The analytical
model identifies the virial and the energy dissipated by the
tip-surface forces as the parameters responsible for the contrast.
The relevance of the discovered principle goes beyond force
microscopy. It could be applied to a wide variety of micro and
nanomechanical sensors.

***

LG11215
----------------------------------------------------------------------
The singular limit of a rough granular gas and the standard perturbative
theories

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


It is well-known that the translational and rotational
motions are decoupled in a molecular gas. Using numerical simulation,
we show that there is significant correlation between translational and
rotational velocities in a sheared `granular' gas of rough particles.
The collisions between rough particles have been modelled by two restitution
coefficients: the normal restitution coefficient (which is an indicator of
the `inelasticity' of particle collisions) and the tangential restitution
coefficient (which characterizes the surface `roughness' of a particle).
Note that for `smooth' particles, the rotational velocity remains unchanged
upon a collision and hence the rotational dissipation vanishes in the
smooth limit. Interestingly, the orientational correlation between
translation
and rotation persists even in the limiting case of smooth, inelastic
particles, and hence the smooth limit of a rough granular gas is
`singular'.
This immediately raises questions about the validity of standard
perturbative theories that are used to derive constitutive models for
granular gases. This issue can only be resolved by probing the velocity
distribution functions of a rough granular gas.


Our work shows that the leading-order velocity distribution function is a
Gaussian for both `smooth' and `rough' limits in the limit of dissipation
going to zero. Hence the theoretical approaches based on
Chapman-Enskog expansion of the pertinent Boltzmann equation are
valid for a rough granular gas for both smooth and rough limits.
This clearly resolves an incorrect assertion in an earlier PRL-paper
about the validity of perturbative expansions about the `smooth' limit
of a granular gas. The key to this resolution is to approach
the `smooth' limit by allowing both translational and rotational
dissipations going to zero.

***

LB11402

What Lies Beneath.

Our life depends on water [1], yet many unique properties of water
still present a puzzle for which different interpretations have been
proposed in the past. We find a quantity that can be measured in
experiments and can distinguish between the two interpretations
commonly used to understand the anomalies of water at low temperature,
a verification that has been elusive so far. The result has possible
implications in understanding the dynamics of hydrated proteins [2],
essential for the functioning of organic cells.

Water has more than sixty anomalies, such as the increase of density
upon increasing temperature --making fishes survive under frozen
lakes-- or its extraordinary large capacity of absorbing heat,
essential for regulating our body temperature. Its heat capacity,
contrary to most of the liquids increases at low temperatures,
where other anomalies appear. For example, water can stay liquid at
very low temperatures: down to -47 Celsius in plants and -92 Celsius
in laboratory at a pressure of 2 kbars.

By numerical simulations and theoretical calculations, we study how
the dynamics of liquid water at low temperature changes with
pressure. This study provides a measure that could clarify what lies
beneath the region of water's phase diagram that we presently know.

***


LH10970
*Reducing the Molecule-Substrate Coupling in C_60 -Based Nanostructures
by Molecular Interactions*


Molecules locking into partner molecules and lifting them up from a
supporting gold surface have been shown in our recent paper in Physical
Review Letters.
Using a scanning temperature microscope, we find molecular
nanostructures composed of three saturated hydrocarbons anchoring to a
C_60 molecule by electrostatic intermolecular forces. In these
nanostructures the fullerene cage is at larger distance to the surface
than expected. While usually the properties of molecules adsorbed on
metal surfaces are perturbed by the bonding interactions, the electronic
structure of the lifted fullerene resembles the one of a free molecule.
Free-like molecules on surfaces are an interesting avenue in the field
of molecular electronics, where the electronic properties of a single
molecule are to be used in single molecule devices.
Our approach to lift a molecule from the supporting substrate by using
molecular interactions opens the possibility to design strategies that
permit to modify the degree of mixing between electronic states of
molecules with surfaces.


***

LB11611

Lipid rafts – standing room only!



If a protein in the cell membrane decides to board a lipid raft – a domain floating in the membrane – it had better prepare to face a crowded ride: our latest work suggests that lipid rafts are only about 10nm in diameter. Rafts have been implied in a wide range of biological processes – the immune response and viral entry among them - due to their potential for regulating the behavior of membrane proteins. To date, however, rafts have stubbornly defied direct observation, leading some to believe that they do not exist in living cells. To investigate the role of the membrane’s material properties in the formation of rafts, we use artificial membranes whose lipid composition mimics that of a living cell. The artificial membranes form giant vesicles in which the coexistence of two liquid phases, among which the ‘raft phase’, is observed. The interplay of two crucial material parameters - the membrane’s bending rigidity and the line tension between the phases - leads to a peanut-like vesicle shape which we capture in a fully analytical model. This allows for the first reliable determination of the physical parameters that govern the shape of composite lipid vesicle systems. These parameters, combined with existing models for raft formation, imply a size of only 10 nm for lipid rafts in living cells. Our work therefore suggests that rafts may yet exist in living systems; we just need to look more closely to see them!

***

LC11142

Spooky cheating for quantum coin flipping

Let's flip a coin to decide who get a car. It is known that a fair
coin flip is possible quantum mechanically [1,2]. What is going on if
the car is a quantum object of the Einstein-Podolsky-Rosen type? In
this paper, we considered this problem. In a quantum coin flip, it is
ensured by the laws of physics that a dishonest player (Alice) cannot
control the outcome of the coin flip. Nevertheless, it is possible for
Alice that the state of the quantum car is changed into what she
desires, whenever she loses the coin flip. Alice accomplishes this
spooky cheating by exploiting the small bias of the probability of the
outcome that a quantum coin flip generally allows. A coin flip is now
an important cryptographic primitive on a communication network. Our
result warns that, if a quantum coin flip is combined with another
quantum cryptographic protocol as a subroutine, an unexpected security
hole will occur.

***

LG11695

In their paper, "Weak values and the Leggett-Garg inequality in solid-state qubits", Williams and Jordan discuss how to implement a 'weak value', one of the strangest predictions of quantum mechanics, in nano-electronic systems. The authors predict that the electrical current generated by a detector will give markedly different results depending on whether the detector was measuring a quantum or classical system - in the quantum system the detector current could exceed the signal from an analogous classical system by hundreds or thousands. This effect can also be used as a test to demonstrate that an experimental system is a bona fide quantum mechanical device that cannot be classically mimicked. The idea of testing a single (possibly macroscopic) system for its `quantumness' was proposed in 1985 by Leggett and Garg who showed that sequential time measurements on quantum systems are correlated in a way that cannot possibly be generated by a classical system - provided that detector does not alter the system it is measuring. Jordan and Williams demonstrate that the `quantumness' tested by the Leggett-Garg criteria is actually a disguised form of the weak value effect: If the detector produces an anomalously large current, it must necessarily violate the Leggett-Garg criteria and visa-versa. This insight also shows the detector must be non-invasive for the weak value to function as a quantum mechanical test.

***

LF11321

Particle Theorists launch charm offensive


The subatomic world is undergoing a revolution
and a relatively exotic denizen,
the charm quark, is the latest target. A team
of theorists from Cornell, Glasgow and the Ohio
State University has calculated key properties of
particles known as D mesons that contain the charm
quark with an accuracy improved by a factor of 4
over previous calculations and existing experimental
results. Experimental numbers are expected to improve
significantly in the next year and this, with
the new theoretical result, will provide a stringent test
of the Standard Model of particle physics in a new arena.

This is an important part of the worldwide programme
exploring all areas of particle
physics for clues to a more complete theory than our
current Standard Model.

The theory of how quarks interact is well understood
in principle, but in practice is very difficult to handle
because the interaction is so strong. It
can be tackled in numerical calculations on a computer
using a technique known as lattice QCD. This
underwent a revolution five years ago when new methods
and increased computer power came together to make accurate
calculations possible for the first time. The new methods
focussed on the up, down and strange quarks that make
up the 'everyday' subatomic world, being constituents
of, for example, the proton and the pi meson. These
quarks are very light, the up and
down quarks in particular weighing almost nothing.
The more exotic charm quark has a mass heavier
than the proton, and this makes it much harder
to work with in lattice QCD. Initial calculations used
different methods for the charm quark than for
up, down and strange and produced less accurate results
because of this.

Now, in this paper, theorists have
produced results by improving the method for
up, down and strange so that it also works well
for charm quarks. This gives not only hugely improved
accuracy but also increased predictive power. For
example, they have been able to determine the mass
of the D meson and its cousin, the D_s, for the first time.
They obtain an accuracy of better than 0.5%, and
good agreement with experiment.
They have also calculated the decay constants
for the D, D_s and the pi meson in the same calculation.
The decay constant measures the probability of the
quark and antiquark that make up the meson being
in the same place so that they can annihilate.
The rate of annihilation can be measured by experiment
and is well known for the pi meson, where the
theorists agree to 2%, but not yet
very well known for the D or D_s. Early
results have appeared from the CLEO-c experiment
at Cornell, the BaBar experiment at Stanford and
the Belle experiment at KEK in Japan, and they will be
working hard to reduce their errors to the 2% level
that theorists have now achieved.

The theorists will now go on to more complicated
calculations that can provide additional stringent
tests of the Standard Model `jigsaw', searching for
the piece that does not fit.

Figure attached : 2 D mesons being produced in the
CLEO-c experiment and decaying. One decays to
a K meson and 3 pi mesons, the other annihilates in
the process being studied in this paper and produces
a mu particle (marked) and an invisible neutrino.

Wednesday, January 9, 2008

1-09-08

LL11210
Structural transition in compressed amorphous sulfur.

Two forms of amorphous sulfur (a-S), with different structures and
densities, have been observed under high pressures. Pressure-induced
amorphization and polyamorphic transitions retain a growing interest in
both fundamental and applied physics in the search for new families of
useful materials. In this paper, we report in situ x-ray diffraction
data on a-S between 50 to 100 GPa and 40 to 175 K, and an implemented
method to extract the density of non-crystalline materials at such
extreme conditions. Synthesized from pressurizing Sulfur I (S-I), a-S
undergoes an abrupt structural transition above 65 GPa, accompanied by a
density discontinuity of 7 %. These results show that this is a
polyamorphic transition, from a low density (LDA) to a high density
(HDA) form. Densities and structures of LDA and HDA forms are similar to
those of S-III and S-IV phases respectively, arguing in favor of their
nanocrystalline nature. The results cast light on the nature of pressure
amorphization, and provide a potential route for the synthesis of new
nano-materials.


***


LH11658
HIGH-SPIN MOLECULES FORMED IN SUPERFLUID HELIUM NANODROPLETS

In our research group, we investigate how to use helium droplets
made of only a few thousand He atoms (diameter of some ten nanometers,
and temperature of 0.4 Kelvin) to assemble high-spin molecules from
individual alkali-metal atoms.

In most materials, electrons pair up and their spins cancel each other.
Under special circumstances, some electrons remain unpaired and align
their spins, which are the source of magnetism in virtually every
material. Their study has very important practical applications,
most notably magnetic storage. Electron and nuclear spins can also
be very sensitive to their environment. Nuclear spins are thus a
routine diagnostic tool in medicine (MRI); both nuclear and electron
spin are of common use in research laboratories to learn about the
structure of molecules and materials. Electron spins are also
candidate Qubits for quantum computers. Finally, electron spins may
be the factor determining the outcome of a chemical reaction
(as well as the reactivity of the products) or the electrical
conductivity of a material.

Superfluid helium is a great environment: being cold and weakly
interacting, it simplifies the spectra of the atoms and molecules
under study. We make it into a jet of droplets in vacuum, easy to
load with the species of interest, in our case rubidium and potassium
atoms. Two or more atoms on the same droplet meet as if in a
nanometer-sized test tube, and form a weakly bound complex. We
concentrate on the high-spin
trimers, which we excite with laser radiation. The many excitation spectra
need to be unfolded from one another, which requires a variety of lasers,
plenty of ingenuity, and patience.

The spectra are assigned by matching them to our own highly accurate
electronic-structure calculations, that is: computer simulations
of the electrons' behavior in these molecules. By looking
at all possible combinations of three atoms, we uncover a regular pattern
which allows us to explain our observation, and in general to predict
what to expect from this class of interesting molecular systems.
We find that they share many interesting properties with quantum dots.

***

LG11386

"Breaking the sound barrier, tuning acoustic resonances, and zero-differential resistance induced by electric current"

If a 2D metal, also known as a quantum Hall system (QHS), is subject to a magnetic field, electrons’ motion becomes quantized into equally spaced levels. If it is further exposed to monochromatic radiation, the system will absorb the radiation when the level spacing matches the photon energy. This absorption can make electrical resistance to increase or virtually vanish [Nature02, PRL03, Physics Today 04].
When instead a QHS is subject to elevated temperatures, sound waves (phonons) become excited. Surprisingly, even though phonons of all different energies below thermal energy are present, electrons chose to predominantly respond to phonons of a certain energy making acoustic resonances possible [PRL 02].

In this paper we study these acoustic resonances in QHS driven by high electrical current. Remarkably, current can both tune [panel (a)] and enhance [panel (b)] phonon resonances, making them evident even at low temperatures. Further, as electrons are accelerated to the speed of sound a prominent peak [arrow in panel (a)] emerges in resistance indicating phonon emission when the sound barrier is broken. Finally, current induces a novel state with zero-differential resistance [panel (c)] which appears to be an analog to radiation-induced zero resistance states [Nature02, PRL03].

***

LK11392
Is Ball Lightning a Dusty Plasma?

In a Physical Review Letter, published in 2006, Eli Jerby and Vladimir
Dikhtyar of the University of Tel-Aviv
announced the laboratory formation of a floating, glowing plasma ball,
closely resembling the phenomenon known
as « Ball Lightning ». This fireball, several centimetres in diameter,
was produced in air by the detachment of
a microwave created discharge from a glass surface. In a follow-up
experiment, Jerby and co-workers, Brian
Mitchell and Jean-Luc LeGarrec from the University of Rennes I and
Theyencheri Narayanan and Michael Sztucki
from the European Synchrotron Radiation Facility (ESRF) in France have
reproduced this fireball and have used
Small Angle X-ray Scattering (SAXS) to demonstrate that the ball
consists of a dusty plasma containing glowing
nanoparticles with a mean diameter of 50 nm. (Physical Review Letters,
in press, 2008). The SAXS technique has
been used recently to map the growth of soot and other nanoparticles in
hydrocarbon flames but this is believed
to be the first time that it has been used to study particles in a
plasma. The dusty plasma fireball, that could
be sustained by microwave energy for up to 15 minutes, was shown to
decay in a time of 2 seconds after the
microwave power was cut off. Future experiments will seek to extend this
decay time by using reactive, but
slowly oxidizing precursor mixtures that have been proposed by
Abrahamson (Nature, 2002) to explain the fact
that Ball Lightning can survive for up to several tens of seconds.

***

LJ11443

Looking Inside a Spin Resonance

The SPIN@COSY polarized beam team found striking new results [1] while studying
the spin-manipulation of polarized deuterons, at the COSY 3.5 GeV/c proton and
deuteron storage ring at the Forschungszentrum in Julich.
The team - from Michigan, COSY, Bonn, J-PARC, Indiana and Groningen, led by
Alan Krisch - used a new RFsolenoid magnet (see Fig. 1) to manipulate the spins
of stored 1.85 GeV/c deuterons, which are spin-1 bosons.

The new RF-solenoid was designed by Michigan graduate student Maria Leonova and
J-PARC electrical engineer Alexander Schnase, and built by Dieter Prasuhn and
his accelerator team at COSY. It used the same sophisticated RF high-voltage
supply as its predecessor RF-dipole. However, the RF solenoid produced a
longitudinal RF magnetic field rather than a radial magnetic field.

The goal of the experiment was to precisely test a new analytic matrix
formalism [2] developed by a theoretical member of the SPIN@COSY team,
Alexander Chao of SLAC. The Chao formalism is the first generalization of the
famed 1960 Froissart-Stora formula [3], which allows one to calculate the beam
polarization after passing through a spin resonance. However, as Froissart and
Stora correctly wrote, their formula is only valid if one measures the initial
beam polarization long before crossing the spin resonance and the final beam
polarization long after crossing it. As polarized beam hardware and the
understanding of spin dynamics improved, polarized beam enthusiasts became
eager to learn what happens very near or even inside a spin resonance.

Thus, Michigan PostDoc Vasily Morozov used the Chao formalism to calculate in
detail what might happen in a new type of experiment, where a 1 MHz RF-magnet's
frequency is swept by a fixed range of 400 Hz, while its end-frequency f_end is
stepped through many different values near and inside spin resonance (see Fig.
2). The Chao-Morozov calculations predicted that, if the magnets resonance
strength was not strong enough to fully flip the spin, then there would be
large oscillations in the final polarization. These oscillations seem so
sensitive to the resonance strength and other parameters, such as the beam's
momentum spread delta-p/p, and the resonances central frequency f_r, that the
oscillations might provide a new way to precisely measure such parameters.

The data from this new type of experiment showed striking oscillations that
agreed very well with these calculations (see Fig. 3). The experiment's data
also verified the polarization's extreme sensitivity to the resonances
strength, the resonance's frequency spread (due to the beam's momentum spread),
and the resonance's central frequency f_r. Moreover, the data [1, 4] clearly
demonstrated that the oscillation's size increased rapidly as the beam's
momentum spread decreased.

These new experimental results also confirm the validity of the Chao matrix
formalism. Thus, it may now be used to better understand the behaviour of the
100-250 GeV polarized protons stored in Brookhavens RHIC and perhaps someday
polarized antiprotons in FAIR's 15 GeV HESR at GSI, or polarized protons stored
in Japan's 30-50 GeV J-PARC or even in CERN's 7 TeV Large Hadron Collider.

***

lg11105
Electric sand findings could lead to better climate models

ANN ARBOR, Mich.--- Wind isn’t acting alone in the geological process
behind erosion, sand dunes and airborne dust particles called aerosols.
The other culprit is electricity. By taking both factors into account,
researchers at the University of Michigan have developed a new model
that matches real-world measurements of “saltation” better than the
decades-old classical theory.

Saltation is the process of wind blowing grains of sand across a
landscape, sending them bouncing against the ground and each other. The
bouncing motion of the saltating grains on the soil bed kicks dust
aerosols into the air.

This new knowledge could lead to better climate models because it helps
scientists understand how aerosols are released, U-M researchers say.
Dust is one type of aerosol. Burning fossil fuels releases another
type. They are known to affect Earth’s climate by blocking and
absorbing sunlight and seeding clouds.

Nilton Renno, associate professor in the Department of Atmospheric,
Oceanic and Space Sciences, and doctoral student Jasper Kok have
demonstrated that saltation creates a field of static electricity that
can be strong enough to double the concentration of bouncing sand
particles, compared to previous assumptions. A paper on their findings
will be published in an upcoming issue of Physical Review Letters.

“The effect of aerosols is one of the most uncertain processes in
climate change modeling,” Kok said. “We now know more of the physics of
how dust aerosols get into the atmosphere, so we should be able to
improve on the way that climate models account for their emission.”

Saltation itself has never been fully understood. Only recently have
detailed measurements been made in nature, as opposed to in a wind
tunnel. And those natural measurements disagreed with classical theory.

Renno first noticed that electricity might be missing from the equation
while studying dust devils in Arizona years ago. The devils had a
strong electric field.

“I was surprised at how large the field was,” Renno said.

Others had suggested that electricity may be involved in saltation, but
Renno said no one determined the extent of that role and created a
model to describe the process including electricity, until now.

“What we discovered is as these particles bounce and rub against each
other, the surface of the ground gets a positive charge and the
particles get a negative charge,” Renno said. “The electric field can
become strong enough to directly lift sand from the surface.”

The surface of the ground acts as a conductor, Kok explained, because
it has a thin film of water on top.

The researchers say this model can accurately reproduce observations.

“It’s a fundamental change in our understanding of the physics of
saltation,” Renno said.

Renno, who is a co-investigator on NASA’s Phoenix and Mars Science
Laboratory missions to Mars, speculates that these saltation electric
fields get so large on the Red Planet they produce ground-level sparks.

The paper is called “Electrostatics in wind-blown sand.”

Kok and Renno's research on the basic physics of saltation and its
implications to climate has been supported by the National Science
Foundation’s Physical and Dynamic Meteorology Program.

Friday, January 4, 2008

1-04-08



LH10916

Nanoquakes are stirring up microflows

At small scales, fluids behave quite different.
Physical effects, being negligible in the world of the daily life become
more and more dominant when things get tiny. Surface tension for example
beats gravity. Inertia means nothing. Squeezed into micron size tubes,
water suddenly appears as viscous as honey, making controlled pumping a
difficult task. Swimming and propulsion requires special techniques,
which have been sucessfully tackled by bacteria and other creatures
living under microflow conditions. Even simple exercises like the mixing
of two fluids resemble the kneading of a pizza dough if working in the
microfluidic regime. Mixing, however, is extremely important for
microfluidic applications like a complete lab on a chip. Without mixing,
all reactions rely on slow diffusion processes, only.
Launching and sweeping narrow beams of surface acoustic waves on a
piezoelectric substrate, scientists at the University of
Augsburg/Germany now gave a twist to restive micrcoflows: Being the
nanometer analogue of an earthquake, a surface acoustic wave transmits
part of it¿s energy to the fluid, creating intense streaming in an
externally controllable direction and amplitude. This way, complex
spatio-temporal flow patterns are excited in the liquid, enabling the
controlled folding of the tiny material lines and induce rapid mixing -
just like a baker would roll and fold the pastry. Theoretically well
described and understood, optimum mixing conditions now may be predicted
and designed for a given microfluidic device.

***

LH10890
Extreme and rare events, i.e.~deadly earthquakes, tsunamis, floods,
etc..., are of great interest and have motivated the development of a
statistical theory of extremes.
In a context far from such
disasters, we bring those techniques to the study of quantum
eigenstates and wave functions, more generally. There an extreme
event depends on the largest/smallest intensities in real space or
some physically important basis. Macroscopic phenomena such as giant
rogue ocean surface waves may be considered as well.

We treat the class of states found for random complex wave functions
or chaotic quantum eigenstates in the absence of time reversal
symmetry, for example, quantum eigenstates for a stadium shaped
billiard table with a weak applied magnetic field. In our work we
show how to compute the distribution of these extreme quantum events
exactly. The surprisingly simple analysis reduces to the "broken
stick distribution" used by mathematical ecologists, which has a slow
convergence toward the appropriate universal statistics followed by
many of the previously considered macroscopic extreme events.


***

LH11386
Polariton lasing in a semiconductor micropillar

At the origin of fascinating phenomena like lasing and Bose Einstein
condensation is the property of bosons to accumulate in a single quantum
state. In the present paper we demonstrate lasing with very special
bosons, namely the discrete light-matter states of semiconductor
micropillars. Semiconductor micropillars are optical cavities where
light is confined in a volume comparable to that of human red blood cell
(of the order of 20 µm3). Very thin layers (quantum wells) are located
where the cavity optical field is maximum and trap optically excited
carriers. As a result, the interaction between light and matter is so
strong that entangled light-matter particles (polaritons) are formed.
Polaritons behave as bosons and combine the dynamics of excitons with
the coherence properties of light: they undergo a sharp threshold at
which they collapse in a single quantum state, and occupancies as large
as 10000 are observed. As a result, coherent laser-like emission is
observed. This new type of lasers presents a threshold power 100 times
smaller than conventional lasing in the same system. Moreover it is a
model solid-state system to reveal new properties of a quantum state
macroscopically occupied with a matter wave.

***

LG10986
A soliton is a special kind of wave which holds itself together as a
stable self-localized structure, instead of spreading and decaying like
ripples on a pond. This paper reports application of this fundamental
concept of nonlinear science to a state-of the art semiconductor laser.
Hence the new device, termed a Cavity Soliton Laser, could be of great
relevance for both science and technology.

The authors demonstrate multiple microlasers, each about 10 microns across,
within a 200 micron diameter Vertical-Cavity Surface-Emitting Laser
(VCSEL). The VCSEL current is kept so low that lasing requires external
feedback, and furthermore that the light organizes itself into solitonic
structures with the right shape, frequency and amplitude to be
self-sustaining. These microlasers are bistable similar to electronic
flip-flops and can be set and reset with an external control beam anywhere
in the active area. Due to the self-localization there is no need for
micro-fabrication of individual emitters.

Interesting future directions include the interaction of these solitons,
exploiting their freedom of frequency, phase and polarization, and
miniaturization for applications in all-optical processing for future
photonic networks. The investigations are part of a European project
FunFACS directed on Fundamentals, Functionalities and Applications of
Cavity Solitons (www.funfacs.org).

***



LL11069
Dancing vortex in airy-fairy way

A vortex can dance like a fairy, and even get into a tangle, in a
superfluid. In the present paper, we report that a vortex becomes
stretched and entangled by attaching to an oscillating obstacle,
triggering turbulence. In a superfluid, a vortex is so stable to form a
ring and propagate due to vortex flow like a smoke ring does. The
turbulence of a superfluid is controllable, as observed in this
report. This work sheds light on turbulence, which has been a great
mystery in nature.

Figure caption:
Dancing vortices (fig-a.jpg) develop to turbulence (fig-b.jpg). The gold
sphere is an oscillating obstacle. You can also see this simulation in


***

LF11123


A new look at the binding forces that hold materials and molecules together




Many-electron correlations are essential for determining the structure and dynamics of all condensed matter systems. However it is very difficult to probe them directly by conventional spectroscopic techniques and isolate them from other effects. A newly proposed two-dimensional coherent optical spectroscopy targets these tiny but critical correlations among particles. Particle correlations can be easily singled out by new signals that vanish by quantum interference when correlations are absent. This technique can help understand and visualize quantum microscopic processes such as electron-hole dynamics in semiconductors, and chemical reactions and can also help manipulate macroscopic quantum systems such as superconductors and Bose-Einstein condensates. It can further facilitate the design of novel materials and next generation of semiconductor devices.

***

LK11590
Loschmidt cooling by time reversal of atomic matter waves


The statistical theory of gases developed by Boltzmann leads to
macroscopic irreversibility and entropy growth even if
dynamical equations of motion are time reversible.
This contradiction was pointed out by Loschmidt
and is now known as the Loschmidt paradox.
The reply of Boltzmann relied on the technical difficulty
of velocity reversal for material particles: a story tells that
he simply said ``then go and do it!''.
The modern resolution of this famous dispute came with
the development of the theory of
dynamical chaos where small perturbations grow exponentially
with time, making the motion practically irreversible.
However, the quantum evolution remains stable and reversible
in presence of small perturbations. This allowed to realize
experimental implementations of time reversibility for quantum dynamics
or propagating waves with spin systems (spin echo technique),
acoustic and electromagnetic waves,
resulting in various technological applications.
But till now the time reversal of matter waves
has not been performed so far.

In this paper we present a concrete experimental proposal of
an effective time reversal of atomic matter waves
in the regime of quantum chaos.
Surprisingly, a significant fraction of the time reversed atoms
becomes cooled down by several orders of magnitude during the process.
The proposed scheme of this Loschmidt cooling
can be implemented with existing experimental setups
for cold atoms in optical lattices.

***

LH10876
The Parts Determine the Whole, Except for Schrodinger's Cat

In quantum mechanics, the whole is greater than the sum of its parts,
and quantum entanglement sees to it that consideration of the affairs
of a number of individual particles almost never tells the story about
the collection as a whole. Nevertheless, the state of affairs of a
collection of particles (the whole) is determined by the states of
larger subcollections (the parts) for all but a small class of
extremely entangled states, the identity of which has been unknown
until now. In this paper, we show that the extremely entangled states
of a collection of quantum bits (simple particles that can only be
found in one of two states, say up or down), are none other than
Schrodinger Cat states, special types of highly correlated states in
which all quantum bits are up (cat alive) or all quantum bits are down
(cat dead). Thus, the Schrodinger Cat states possess a higher degree
of correlation than other quantum states, and appear to play a
privileged role in the theory of quantum entanglement.

***


LE11341
The next earthquake magnitude can be predicted


Since the Omori discovery in 1894, it is universally accepted that
seismicity is a process clustered in time and space: after big events a large
number of quakes occurs closely in time and space. On the other hand,
magnitudes are generally supposed to be independent and therefore the
magnitude of the next earthquake is unpredictable.
In this paper we conversely show that clustering in magnitude does exist:
big quakes preferentially occur after big ones.
This suggests
that an earthquake alters the system state in such a way to influence
the energy released in subsequent events.
The time and space scales of this process appear to be controlled by the
magnitude difference between correlated events.
In particular, two events
of magnitude $m_1$ and $m_2$ are correlated on a time scale
$\tau \propto 10^{m_1-m_2}$ and over a distance $r \sim \tau^(1/3)$.
This approach allows to construct seismic hazard maps reproducing the
spatio-temporal occurrence of the last 30 years California earthquakes.
In the attached figure, we plot the probability $P$ to have $m \ge 3$
earthquakes during January 2007 because of past seismicity.
Recorded events (yellow stars) are closely located near the maximums of $P$.

Tuesday, December 11, 2007

12-11-07

LK11708
Exciting Rydberg atoms in Bose-Einstein condensates

In the third of a series of Letters on coherent Rydberg excitation of
dense ultracold atoms, the Pfau group in Stuttgart reports on the
investigation of Rydberg atoms in a Bose-Einstein condensate (Heidemann
et al., PRL in press). Due to the strong interactions between the
Rydberg atoms up to 10000 atoms team up as a so called "super atom" to
share a single Rydberg excitation in a coherent way (Heidemann et al.,
PRL *99*, 163601 (2007)). In another experiment they prove the coherence
of the excitation despite strong interactions and investigated dephasing
processes (Raitzsch et al., PRL in press).
Rydberg atoms are several thousands of times larger than normal atoms.
The loosely bound electron is extremely sensitive to electric fields and
to other nearby Rydberg atoms. Therefore Rydberg atoms can talk to each
other on distances of around 5 micrometers. This is 50 times their own
size and half the size of a human red blood cell - huge distances for
atoms. At the same time Rydberg atoms can store quantum information by a
well protected nuclear spin. That's why they are discussed as a possible
system for the implementation of quantum algorithms (Lukin et al. PRL
*87*, 037901 (2001)). Besides this Rydberg atoms in a BEC will be able
to model coherent many body physics far from equilibrium and impurities
in a quantum gas.

***

LK11168
Smectic vortex phase at high fields in optimally-doped high-temperature
superconductor


A long-standing debate about the existence of a smectic vortex phase in
"low anisotropy" high-temperature superconductors is settled by a study
of optimally-doped YBa(2)Cu(3)O(7) films at pulsed fields larger than 40T.

Deep inside the superconducting state when a magnetic field penetrates a
superconductor, vortex matter can exist in solid or liquid phases. The
nature of these phases is given by that of the pinning centers holding
the vortices in place. Pinning centers enable films to carry current
without dissipation, which is extremely important for applications of
superconductivity. When magnetic field or temperature increases, the
vortex lattice crosses the melting line and becomes a liquid with the
concomitant increase of the electrical resistance.

In this letter we report electrical resistivity measurements as a
function of angle, field, and temperature. We confirm predictions for
layered superconductors by finding that near 80 K, when the magnetic
field (H>40T) is aligned with the layers, the melting line turns upward
and the critical exponent becomes similar to that of the
nematic-smectic-A (liquid-crystal) transition. Also we observe that up
to the highest fields measured (50T) correlated defects arrest the
motion of vortices well into the liquid phase.

***

LJ11359
Spin-flips in electron quantum fluids now come in pairs


When exposed to certain strong magnetic fields, a system of electrons confined in a very thin layer of a semiconductor at temperatures just a few hundredths of a degree above absolute zero can condense into a remarkable state called a fractional quantum Hall (FQH) liquid. In this work, we discover a fundamental excitation in a FQH system in which two electronic magnetic moments (spins) are simultaneously flipped, in contrast to the already known single spin-flip processes. The excitation is selectively induced by laser illumination. We find that, unlike other excitations of the system, the two-spin excitation becomes more predominant as the temperature is increased. This suggests that in the system there are in fact two distinct but coexisting phases of electrons that support different kinds of excitations. These results offer new insights into FQH systems, particularly on how this state is destroyed as the temperature increases. Indeed, two characteristics of such systems are the absence of electrical resistance in the direction of current flow, and a strong alignment or polarization of the spins. These two properties are lost as the sample is warmed up, and the two-spin excitation may have an important role in these processes.

***

LD11333
The discovery of two energy-scales in under-doped cuprate materials sheds
light on the mechanism of High-Temperature Superconductivity


Spectroscopy and photoemission experiments have recently brought into
focus the concept of two energy-gaps with opposite doping dependence in
cuprate-based superconductors, reviving the experimental and theoretical
debate on the mechanism of high-temperature superconductivity. A theory
for superconductivity in the cuprates is extremely difficult to develop,
as the strongly-interacting many-body nature of high-temperature
superconductors does not allow employing standard theoretical tools. In
this work we study the superconducting phase of a two-dimensional model of
electrons, using new powerful theoretical tools (a cluster-extension of
Dynamical Mean Field Theory). Our study shows that, in the region of the
phase diagram close to the superconductor-insulator transition (driven by
varying doping), the gap observed in photoemission displays indeed two
components, which have distinct behavior as a function of doping. A first
component has origin from superconductivity and decreases with decreasing
doping. A second component has an additional contribution from a
“pseudo-gap” already existing in the normal-state and increases with
decreasing doping. Our result shows that the two-component gap is a key
feature of the superconducting phase, in agreement with recent experiments
on low-doped superconducting cuprates.

***

LL11226
How Sacred are the Laws of Thermodynamics?

Einstein believed that thermodynamics is the only physical theory which
"will never be overthrown".
While the first law -- the conservation of energy -- is universally
understood and accepted, the conditions
of applicability of the second law are much more subtle. The second law
prohibits the existence of perpetual motion
machines. It also requires that for an isolated system,
the degree of disorder -- entropy -- be maximum.
One of the consequences of the second law
is that the temperature of coexisting thermodynamic
phases -- such as liquid and its vapor --
must be the same. There is, however, an important class of systems
which seems
to violate the second law of thermodynamics. Consider a plasma (gas of
charged particles such
as electrons) confined by a potential (in the paper we studied a
specific example of charged
particle beam, confined by a magnetic potential). Under very broad
conditions, the plasma will
separate into coexisting liquid-like (high-density) and gas-like
(low-density) phases. However,
unlike for normal fluids, the two coexisting phases are at very
different temperatures -- the
high-density core is very cold, while the low-density halo is very hot!
From the practical point of view,
the halo production is very detrimental to the efficient propagation of
intense charged particle beams
and must be minimized as much as possible.
The theory presented in the paper explains how
this unusual phase transition can be predicted theoretically and how it
can be reconciled with the
second law of thermodynamics.

***


LG11576
Biological physics of snake hearing

A novel theoretical analysis has provided the first explicit model for
the biophysical and neuronal bases of hearing in snakes. The authors
trace surface vibrations in the sand on which a snake lives, through the
two sides of the lower jaw and middle ear, detail the conversion of
vibrations into neuronal signals at the cochlea, and explore how these
stereo signals can lead to accurate azimuthal localization of the
stimulus. One of the key methods used by the authors is to treat the
movements of the substrate, viz., dry sand, as water waves and apply
nautical engineering to model both sides of the lower jaw as "boats"
moving with these waves. The work builds on behavioral studies of snake
hearing showing high sensitivity, and supports an earlier assertion that
snakes have re-evolved the ear. This "new" hearing system is proposed to
be based on a Jeffress-like system of interaural time differences (ITDs)
that are integrated to achieve azimuthal localization. If supported
experimentally, this would provide additional evidence for the repeated
evolution of a Jeffress system.

***


LA11373

Visualizing Rapidly Migrating Hydrogen by Molecular Fireworks

We have demonstrated the visualization of hydrogen atoms rapidly
migrating within a molecule by using ultrashort intense laser
pulses. Highly charged molecular ions formed by such laser pulses
subsequently explode into fragments due to the strong electrostatic
repulsion among the positive charges. The structure of the molecules
at the instance of the laser irradiation can be studied by measuring
precisely the momenta of the fragments. This can be compared to
fireworks exploded in the night sky, which reflect how the “stars”
containing sparklers are embedded in the shells. In this paper, we
studied the location of hydrogen atoms in deuterated acetylene
dication, by igniting the “molecular fireworks” at different times
after the creation of dication. The migration is found to proceed in
a recurrent manner: One of the hydrogen atoms shifts from carbon site
to the other in 90 fs (1 fs = 10^-15 s) and then migrates back to the
original site by 280 fs. Hydrogen migration plays important roles in
various chemical reactions such as the synthesis of vitamin D in
skin. The direct visualization demonstrated here will provide a
deeper understanding of such chemical reactions as well as new
prospects for their control.

***


LK11295
The motions of graphite under the light

When a pencil traces a line, small two-dimensional flakes of graphite (termed graphene) are detached from its tip and deposited on paper. The weakness of the bond keeping together graphite's two-dimensional layers is responsible for this behavior. When such a weak bond is destabilized by an ultrashort laser pulse, graphene layer to layer distance shrinks, while common materials immediately react to a temperature jump with an expansion of the unit cell. Depending on the intensity of the laser pulse, contraction can be followed by an expansion able to damage the surface of the crystal.
We perturb the material with ultrashort laser pulses which, in graphite, create a charge distribution able to selectively destabilize the bond perpendicular to the graphene layers. The reaction of the material to this perturbation is observed by capturing subsequent snapshots of the crystal structure with ultrashort electron pulses. The simultaneous use of photons and electrons, which thanks to their very short associated wavelength provide spatial atomic resolution, allowed us for the first time to produce a movie of the non thermal motions of graphite`s lattice. These motions are responsible for many mechanical behaviors of graphite, a material widely used in nuclear reactors or electronic technology, such as its damage under radiation or its dry lubricant properties.

***

LF11567
Drawing Graph of Graphene with Large Spin

The unexpected emergence of magnetism in carbon is now explained with a graph theory argument, which also suggests a venue of building spintronics circuits by sculpting graphene, a single sheet of carbon atoms. Traditional magnetism has been relying on metals such as iron for thousands of years. Recent experiments however reported magnetic order in carbon, a central element for life and organic chemistry. Such carbon magnetism is still under intensive debate because the underlying mechanism of the magnetic order remains illusive. In this work, we demonstrate through a topological argument and ab-initio calculation that large spin naturally arise in the honeycomb network of carbon atoms through a mechanism called topological frustration, i.e., all the pi bond between nearest-neighbor atoms can not be satisfied simultaneously in a random broken hexagonal network. This principle is facilitated by wisdom in graph theory revealing the connection between singularities of a hexagonal graph and its maximum nonadjacent vertices. Based on this principle, one may introduce large spin and desired spin distribution at room temperature by sculpting graphene, a recently discovered material touted as the basis for next generation electronic and spintronics devices. The potential application of these sculpted graphene circuits is tantalizing for its low spin-orbital coupling, flexibility, light weight, and biocompatibility.

***

LG11625

Researchers predict that electric current can inhibit stress-induced cracking on metal surfaces

Stressed crystalline solids are particularly important materials in applications ranging from aerospace and nuclear engineering to microelectronics and nanofabrication. These materials, however, are known to undergo surface morphological instabilities, which may introduce various catastrophic defects, such as cracks, into the components or devices made of these materials. In a recent theoretical study that has been accepted for publication in Physical Review Letters, Tomar, Gungor, and Maroudas have shown how such surface morphological instabilities can be inhibited through the action of an external force on the solid material simultaneously with the mechanical stress. Specifically, these researchers have demonstrated that the simultaneous action of a sufficiently strong electric field on an electrically conducting stressed solid (such as a metal) can inhibit stress-induced crack-like surface instabilities. Therefore, electric current can stabilize surfaces of stressed solids that are otherwise vulnerable to cracking. This is facilitated through the mass transport phenomenon of surface electromigration. Their work has broader implications for the stabilization of materials structure and morphology through the simultaneous application of multiple external forces.

***

LG11546
Compressing stars

In this work, purely stellar matter was compressed for the first time.
"Pieces of star"» are exotic beam of 56 Nickel, created in laboratory.
Thanks to a revolutionary gaseous target called MAYA, they reach an
excited state, the giant monopole resonance, in which nuclei " breath"
through a compression-dilatation mode. This breakthrough, which is also
valid for neutron-rich exotic nuclei, paves the way to the exploration
of the equation of state of asymmetric nuclear matter, which plays a
pivotal role in compression-explosion scenarios of supernovae, or in the
structure of pulsars and neutrons stars compressed by the gravitational
attraction.

***


LJ11334
Decompressing emulsion droplets favors coalescence

An emulsion is a widespread liquid system used in many industrial
areas like food-processing (ice-cream, mayonnaise, …), cosmetics,
paints as well as oil recovery. It is a metastable mixing of two
immiscible liquids, one being dispersed in droplets in the second
one, and surfactants as stabilizing agents. Taking advantage of the
recent development of microfluidics, we investigated the
destabilization process of an emulsion under flow in a microfluidic
device. The experimental approach enables us to generate a periodic
train of droplet pairs, and thus to isolate and analyze the basic
step of the destabilization, namely the coalescence of two droplets
that collide. We demonstrate a counter intuitive phenomenon:
coalescence occurs during the separation phase and not during the
impact. Separation induces the formation of two facing nipples in the
contact area that hastens the connection of the interfaces prior to
fusion. We note also that the destabilization mechanism is
responsible of a cascade of coalescence events in a compact system of
droplets, a phenomenon that may explain rapid destruction of
macroscopic emulsions.

Tuesday, December 4, 2007

12-4-07

LH11777

CROSSED RATCHETS FOR 2D DOMAIN WALLS


A domain wall moving across a magnetic thin film with an array of asymmetric holes has been found to be subject to two crossed ratchet effects of opposite sign. This results in an inversion of domain wall rectification as a function of magnetic field that provides the basis of a novel memory effect.

The propagation of domain walls in thin magnetic films with pinning is a problem of great interest because it provides both the basis for many magnetic devices and an excellent experimental system to study the physics of driven elastic interfaces, such as ferroelectric domain walls, contact lines of liquids menisci, dislocations, fractures and so on. When the pinning potential is asymmetric, propagation can be favored in one direction giving rise to a ratchet effect. Up to now, these studies have been performed restricting wall motion to a narrow 1D path so that the wall behaves as a point particle in an asymmetric potential.

In this paper, domain wall motion in a 2D extended film has been considered. In this geometry, the domain wall is an elastic line that can distort all along its length in response to a 2D asymmetric pinning potential. The competition between elasticity and pinning results in the existence of two crossed ratchet effects of opposite sign depending on whether a flat or a kinked wall is moving: one favors the forward motion of a flat wall while the other acts on the upward/downward kink propagation favoring net backward wall motion at low fields. Due to the interplay between both ratchets, the system keeps memory of the sign of the last saturating state, opening the possibility for applications in memory devices.

***

LJ10995
GRAVITATIONAL ENERGY AS DARK ENERGY: EINSTEIN'S UNFINISHED REVOLUTION?

A new solution is derived giving a potentially viable model of
the Universe without exotic dark energy or modifications to gravity.
The biggest problem in cosmology, dark energy, is solved by deeper
understanding of unexplored territory in Einstein's original theory -
the fact that space itself is dynamical, carrying energy in its fabric.
The author replaces the Friedmann-Lemaitre solutions of our standard
cosmology, which date from the 1920s. These old solutions assume that
matter is a smooth featureless fluid, even though the present-day universe
is very lumpy, with clusters of galaxies strung in bubble walls around
huge voids. The new solution uses an average of Einstein's equations that
accounts for the void structure. The author returns to first principles in
reinterpreting cosmological observations. Gradients in spatial curvature
can give rise to gradients in gravitational energy, with the result that
the clocks of observers in galaxies - which broke away from the expansion
of the universe over 10 billion years ago - eventually tick slower than
clocks at an average location in freely-expanding space; giving apparent
cosmic acceleration. These paradigm-challenging claims are backed up by
two other papers [New J. Phys. 9 (2007) 377, and arxiv:0709.2535,
Astrophys. J. Letters in press] where observational tests are performed,
and new best-fit parameters for the universe derived.

***

LH11535
Ordinarily, we think of a liquid becoming a glass as the temperature is decreased. By contrast, this paper reveals that a model liquid, composed of silica nanoparticles in a binary fluid, becomes a glass not only on cooling but also on heating! Although initially surprising, this behavior is, in fact, predicted by recent theories, and leads us another step towards cracking the glass puzzle.

***

LG11546
Compressing stars

In this work, purely stellar matter was compressed for the first time.
"Pieces of star"» are exotic beam of 56 Nickel, created in laboratory.
Thanks to a revolutionary gaseous target called MAYA, they reach an
excited state, the giant monopole resonance, in which nuclei " breath"
through a compression-dilatation mode. This breakthrough, which is also
valid for neutron-rich exotic nuclei, paves the way to the exploration
of the equation of state of asymmetric nuclear matter, which plays a
pivotal role in compression-explosion scenarios of supernovae, or in the
structure of pulsars and neutrons stars compressed by the gravitational
attraction.


***

LK11641
Mechanical Response of Molecular Swimmers? It depends!

The concept of a ``stochastic motor'' for molecular swimmers is
introduced in this paper, and it is shown that the force-velocity
response of a nanoswimmer depends on where the force is exerted.

As technological advances allow us to fabricate smaller and smaller
autonomous self-propelled devices, it is clear that at some point
directed propulsion could not come from pre-specified deterministic
periodic deformation of the swimmer's body and we need to develop
strategies to extract a net directed motion from a series of random
transitions in the conformation space of the swimmer. We have
constructed a motor based on this concept and used it to propel a
simple low Reynolds number swimmer, namely, the three-sphere swimmer
model. When the detailed-balanced is broken and the motor is driven
out of equilibrium, it can propel the swimmer in the required
direction. Moreover, we have found that when such a system is put
under the effect of an external load, the way stress is distributed
across the swimmer's body will determine the efficiency of the
different legs of the reaction cycle, and hence the net swimming
velocity. This shows that for such designed small swimmers, the
concept of a generic force--velocity response breaks down, which
might have intriguing implications for designing molecular swimmers.

***

LH11233
Observation of squeezed light with 10dB quantum noise reduction

In this paper we report on the first detection of a squeezed laser beam with a quantum noise reduction of a factor of 10 below the shot noise level. The experiment was performed at the Albert-Einstein-Institute Hannover, Germany (Max-Planck-Institute for Gravitational Physics and Institute for Gravitational Physics at the Leibniz Universitaet Hannover, www.aei.uni-hannover.de, www.squeezed-light.de). After 20 years of intensive research doubts arose whether strong squeezing can ever be realized as required for eminent applications. Here we show experimentally that such strong squeezing of light's quantum noise is possible. Furthermore, thorough analysis reveals that even higher squeezing factors will be feasible in our setup.

Squeezed states of light offer a broad spectrum of applications. In quantum communication and quantum information strong squeezed light offers an extra high transmission bandwidth. Quantum teleportation and the generation of entangled states are further applications, which have already been demonstrated in proof of principle experiments. Another important field of application are the high precision laser interferometers built for the detection of gravitational waves. These instruments have now reached a technical standard at which squeezed light becomes a key technology. Squeezing the quantum noise of these detectors provides a sensitivity improvement without increasing the thermal load inside the interferometers. This is especially essential for the realization of future cryogenically cooled detectors with even higher sensitivities. The first implementation of the squeezed light technique in gravitational wave detectors is already in preparation.

We expect that our observation of 10dB squeezing of light's quantum noise has a significant impact on quantum communication and information, the development of quantum memories, the generation of entanglement and high precision metrology. Progress in these fields that was not envisaged so far might now be possible.

Saturday, December 1, 2007

12-1-07

LG11546

Compressing stars

In this work, purely stellar matter was compressed for the first time.
"Pieces of star"» are exotic beam of 56 Nickel, created in laboratory.
Thanks to a revolutionary gaseous target called MAYA, they reach an
excited state, the giant monopole resonance, in which nuclei " breath"
through a compression-dilatation mode. This breakthrough, which is also
valid for neutron-rich exotic nuclei, paves the way to the exploration of
the equation of state of asymmetric nuclear matter, which plays a pivotal
role in compression-explosion scenarios of supernovae, or in the structure
of pulsars and neutrons stars compressed by the gravitational attraction.

***

LA11137
Mechanism of Accelerating Hydrogen Kinetics in Hydrogen Storage
Materials Revealed


The origin of slow hydrogen (H) kinetics in a hydride-based hydrogen
storage material and the mechanism of accelerating it by doping of
transition metal catalysts has been revealed for the first time by a
novel technique of muon spin rotation. This discovery would have a
strong influence over the choice/design of practical materials for
the future H-storages. In this work, it is shown that interstitial
hydrogen atoms in sodium alanate (a prototype hydride considered as a
strong candidate material for practical H-storage) fall into a
bonding state with negatively charged alanate ions. Such a state is
understood as a new variant of hydrogen bonding that has never been
considered previously in H-storage materials. Moreover, the Ti-
doping, which has been known for a decade to accelerate H-kinetics
but without any clear knowledge on the microscopic mechanism, turns
out to reduce the kinetic barrier for hydrogen to move from the H-
bonding state to the octahedral interstitial site where H atoms are
mobile, thus accelerating the H-kinetics.

***

LG11405

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

Correlations are ubiquitous – both in classical and quantum worlds. Our work concerns with distinguishing these two. Consider Alice and Bob sharing a quantum state. When Alice performs measurement on her part of the system, Bob’s state is modified, in general. But if the correlation happens to be classical, Alice must be able to find an optimal measurement scheme leaving the overall 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 introducing a third party Charlie - but leaving the original shared state between Alice and Bob unaltered - in defining a new measure. This is designed to quantify the least disturbance on the state of Alice-Bob when an optimal partial measurement is performed at Alice-Charlie end. Strikingly, our quantumness vanishes if Alice-Bob system is separable - unlike the other measures mentioned above – as Alice and Charlie together can always end up with an optimal measurement scheme under which the Alice-Bob state remains insensitive! Another remarkable identification is that our measurement-based quantification is identically equal 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.

***

LF11340

Effects of interactions in the spin-polarized transport through Aharonov-Bohm-Casher interferometers.


The Aharonov-Bohm (AB) effect, and its charge-spin dual, the Aharonov-Casher
(AC) effect, are purely quantum mechanical phenomena arising from the
interaction between the electromagnetic field and the electronic charge
or magnetic moment (spin), when the electron performs a closed path.
Experiments in mesoscopic rings pierced by a magnetic or electric field have
beautifully demonstrated these one-particle effects as oscillations in
the conductance through rings.

In this work, we investigate theoretically the situation when the AB and
AC effects take place simultaneously in a ring with embedded quantum
dots (QDs). Due to strong Coulomb repulsion, a QD can have a localized
magnetic moment with an odd number of electrons. At very low
temperatures, the antiferromagnetic exchange interaction between the
magnetic moment and the spin of conduction electrons leads to the total
screening of local moment, a highly non-trivial many-body phenomenon
known as Kondo effect. As a consequence of the interplay between Kondo
and interference effects. very modest electric and magnetic fields can lead
to high spin polarizations. This can be useful in the search for
electronic devices controlled by the spin instead of the charge of the
electrons (spintronics).