Friday, November 14, 2008

November 14, 2008

LR10964

Exotic braids for cold atoms: simulating anyons in the lab

We present a method to simulate quantum computations by the creation,
transport, and fusion of anyonic particles in a planar system of cold
atoms in an optical lattice. Particles in our three-dimensional world
come in two fundamentally different types depending on their
statistical properties, determined by their behaviour under exchange,
or braiding, of a pair of particles: Fermions, building blocks of
matter, and bosons, carriers of interactions (or forces.) In planar
materials, however, quantum mechanics allows for anyons, particles
with exotic braiding and statistical properties, which in some cases
may be used to perform universal quantum computations. Accordingly,
some planar systems with anyons have been proposed as architectures
for a fault-tolerant quantum computer, where operations are carried
out by creating, moving, and fusing these particles. In this paper we
show how these operations can be performed on a suitable planar system
simulated in a gas of cold atoms trapped in an optical lattice, using
atoms of a different species as "moving heads" to control and drive
the computations. Our method requires putting together already
demonstrated experimental techniques, which makes a simulation of
anyonic properties feasible in the lab.

***

LX10901

MAGNETIC TURBULENT WAVES

Wave turbulence describes the statistical behavior of a set of
randomly interacting waves and therefore has been applied to a great
variety of systems (ocean surface waves, plasma waves in solar wind,
spin waves in solids…), but few laboratory experiments have been
performed so far. Now, in a paper appearing in Physical Review
Letters, François Boyer and Eric Falcon of the University Paris
Diderot, France, report the first observation of magnetic wave
turbulence on the surface of a ferrofluid submitted to a magnetic
field, a regime that has not yet been envisaged in theoretical studies.

When wave amplitudes are high enough, the wave turbulence theory
predicts a nonlinear resonant process between waves which generates
smaller wavelengths. In a ferrofluid (a fluid with a suspension of
nanometric magnetic particles), the dispersion relation of surface
waves was known to be tuned by a magnetic field. This leads the
authors to the first observation of a magnetic wave turbulence
regime. The existence domains of gravity and capillary wave
turbulence are also documented as well as a triple point of
coexistence of these three regimes: these new results are understood
using dimensional analysis. Such an experimental system where the
dispersion relation is tuned by the operator from a non dispersive to
a dispersive system is thus of primary interest to test the wave
turbulence theory.

***

BUR1096B

Surface Superconductivity and Paramagnetic Meissner Effect in a
conventional type-II Superconductor


New results pertaining to the simultaneous observation of surface
superconductivity and paramagnetic Meissner effect in a high purity single
crystal of elemental Nb have revealed the sequence of steps leading to an
eventual stabilization of ordered flux line lattice in a type-II
superconductor. Superconductors are materials with zero electrical
resistance and are classified into two categories (type-I and type-II) on
the basis of their magnetic characteristics. Using a mean field
description, Abrikosov had predicted the nucleation of quantized flux
lines below the upper critical field (Hc2) in type-II superconductors. The
temperature dependence of the shielding response of a small superimposed
ac field has elucidated that superconductivity nucleates first near the
surface of a Nb sphere at a threshold field value (Hc3), much larger than
Hc2. As the super currents flow, the magnetic flux gets compressed within
the sphere, resulting in a positive dc magnetization signal (often termed
as Paramagnetic Meissner Effect) for field values lying in between Hc3 and
Hc2. Diamagnetic signal appears when the quantized flux lines get formed
below Hc2. Initially this vortex array is disordered (amorphous), however,
the spatial order among these vortices emerges (Abrikosov vortex lattice)
below the onset temperature of peak effect phenomenon in the critical
current density of weakly (collective) pinned array of vortices.
Accordingly we can define a new (H,T) phase diagram in a realistic
specimen of a high purity type-II superconductor, as given in the figure.

***

EV10436

Making (One-way) Waves

We have constructed a unique mechanical arrangement of one-way
coupled oscillators that enables the endless propagation of solitary
waves, but only in one direction, and only if there is an odd number
of elements. Typical oscillators, such as the coiled springs in a
mattress, are coupled so that vibrating one vibrates the others, and
vice versa, a consequence of Newton's famous third law of action and
reaction. However, in our array, disturbances propagate in only one
direction. Each oscillator is an inverted pendulum restrained by
springs, whose left-right oscillation directs jets of falling water
onto the next oscillator. An even number of such oscillators reaches
a quiescent equilibrium where the pendulums alternate left-right in
pairs. However, for odd arrays, there is always one unpaired
oscillator that frustrates this quiescent equilibrium and propagates
indefinitely as a single left-right pendulum oscillation. Our first
prototype array was circular and made from K’NEX construction
pieces, while our final apparatus is linear with interconnected ends
and constructed from machined aluminum, PVC pipe, rubber hoses, and
other inexpensive materials. Our array realizes an extreme case of
wave propagation in anisotropic media and is a dramatic mechanical
example of one-way coupling.

***

LM11138E

A New View of Cavitation

Cavitation is a fascinating phenomenon in which a liquid forms bubbles
of vapour and gas as a result of a variation of pressure. The bubbles
themselves usually attract most attention: their collapse leads to huge
temperatures and pressures, making them suitable for use as tiny
chemical reactors. We have examined cavitation from a different point of
view: not as an evolution of the bubbles, but as an evolution of the
molecules of gas that actually comprise the bubbles.

Imagine that as soon as a gas molecule enters a cavitating bubble, we
colour it black. How long is it before all gas molecules in the vessel
are blackened? For how long do the gas molecules reside in cavitating
bubbles? To address such questions, we have measured, for the first
time, the dynamics of both the dissolved gas and the liquid in a fluid,
in which cavitation is caused by a strong acoustic field. We dissolved
an NMR-sensitive gas in water and used Magnetic Resonance Imaging to
trace its motion and, separately, the motion of the water. The motion of
the water and the dissolved gas can be very different, because the gas
jumps from its dissolved state into and out of the cavitating bubbles
and travels with them. The residence time for gas molecules inside the
bubble can be very short, on the order of two oscillation cycles.
Depending on the cavitation intensity, all molecules of dissolved gas in
the vessel can go through the "bubbly" state within a second.

***

YU10004

Link Maps – Helping first year physics students stay on course

A new type of concept map helps first year students without a physics
background achieve a whole letter grade better than their peers! Concept
maps are a well known study aid, but they have not been used extensively
in physics – until now. At the University of Sydney a new type of concept
map, dubbed Link Maps, focus on the central concepts covered in the first
year physics course, and the equations which show how they are related. In
the pilot study, first year students without background in physics were
invited to attend one extra tutorial per week, called Map Meetings. In
these, Link Maps were the central feature around which the relevant weekly
topic was covered and problems were solved. The Map Meetings were very
popular; weekly attracting around 20% of the population comprising 351
students. However, in addition to their popularity, students who
consistently attended Map Meetings achieved 9 marks out of 90 (translating
to a whole letter grade) better in the final exam than students with
comparable academic background who were unable to attend the Map Meetings.


***

LN11136

Evidence for magnetic proximity effect up to room
temperature in Fe(Ga,Mn)As interfaces


The control of the mutual interaction between magnetically
''active'' layers at the interface of heterostructures is
a major challenge in solid state physics and one of the
key points of spintronics research. Diluted magnetic
semiconductors (DMS), in which magnetic impurities are
artificially imbedded into a semiconductor host crystal
lattice may allow to integrate the spin degree of freedom
and semiconducting properties in a single material.
Although the correlation between magnetic and transport
properties in DMS is likely to be a crucial ingredient in
possible applications, the physical mechanisms underlying
the magnetic properties are still a matter of an intense
debate. We report experimental evidence of magnetic
coupling at the interface between a thin ferromagnetic Fe
film and a DMS (in the present case (GaMn)As). Our
results reveal the presence of a long range ferromagnetic
order, up to room temperature, in a (Ga,Mn)As region as
thick as 2 nm induced by the ferromagnetic order of the Fe
film. The Mn magnetization at the interface is aligned
antiparallel with respect to the magnetization direction
of Fe, and increases with the thickness of the Fe
overlayer

Wednesday, November 12, 2008

November 12, 2008

LT11818

Putting an end to turbulence

When reaching sufficiently large velocities all fluid flows become turbulent, whether it
is water travelling through a garden hose or blood being pumped through veins. Scientists
from the Max-Planck Institute for Dynamics and Self-Organization in Germany and the Delft
University of Technology in the Netherlands, however, have now shown that in pipe flows
turbulence is not stable. After a finite lifetime it disappears and the flow turns laminar -
even if these lifetimes may be extremely long. The researchers studied water flowing through
narrow pipes of up to 14 meters length and monitored the breakdown of turbulence with an
accuracy never before achieved in experiment or numerical simulation. Their results therefore
allow new insights into the elusive nature of turbulence and confirm a 20 year old conjecture
speculating that turbulence may fall into the category of so-called super transient states.
Since turbulent flows consume much more energy than laminar ones, these findings may be of
great importance for many applications like oil pipelines or gas and water supplies. It may
be possible to speed up the extremely slow decay and deliberately change the flow from turbulent
to laminar.

***

LT11941

First observation of doubly magic tin-100 isotope in North
America sheds light on heavy element synthesis in cosmos


Summary: Researchers at Michigan State University's National
Superconducting Cyclotron Laboratory have measured the half-lives of
tin-100 and cadmium-96, two nuclei near the proton-rich limit of
stability with equal numbers of protons and neutrons. The tin-100
observation, the first ever creation of this nucleus in a North
American laboratory, narrows the error range of previous half-life
measurements of this doubly magic isotope, so called because both its
neutrons and protons form a closed configuration which gives extra
stability to the nucleus.

The cadmium-96 measurement, the first of its kind in the world,
undercuts predictions about the role of the isotope as a waiting point
in the rp-process – a key part of heavy element synthesis in the
cosmos. And the finding implies that a new, as-yet-unknown mechanism
is responsible for ruthenium-96, the abundance of which in the solar
system has long been unexplained in nuclear astrophysics.


***

AW10339

Quantum interferometry for absolute spectroscopy

Optical spectra are often regarded as fingerprints of atoms, clusters
and molecules.

We here propose a new scheme to measure the absolute optical absorption

cross section of such nanoparticles. This scheme is based on

near-field matter wave experiments which have already convincingly
demonstrated the quantum wave nature of large

molecules by generating a periodic molecular density pattern, the
interferogramm.

In the present work we exploit the fact that the recoil caused by a
single (!)

photon already suffices to change this pattern significantly.

This is predicted to permit precise and absolute measurements of the
optical absorption cross section and also of fluorescence yields for
isolated

particles in molecular beams.

Compared to other techniques the new method does not require

any knowledge of the particle beam density, nor does it invoke

photo-induced structural changes of the irradiated particles.

Its sensitivity can be high even for very dilute molecular beams.


***

LU11591


How well do electron microscopes resolve the nanoworld?

With this paper we provide for the first time an accurate answer to this fundamental
question. While several multi-million dollar projects worldwide aim for a further
resolution improvement of transmission electron microscopes towards the deep sub-Angstrom
range (see e.g. http://ncem.lbl.gov/TEAM-project), the quantitative assessment of the
actually achieved optical resolution is still a challenge. In this paper we demonstrate
that the commonly accepted traditional resolution assessment procedure, which dates back
to the mid 1970s, is not adequate for a quantitative resolution assessment on the atomic
scale. Motivated by this finding, we succeeded to develop a new measurement principle,
which allows one for the first time to determine the resolution of a transmission electron
microscope on a reliable and quantitative basis. The comparison between the traditional
method and our new method reveals in some cases drastic discrepancies, which are due to
the failure of the commonly used traditional method. Therefore, the new method and its
outcome are highly relevant for the microscope manufacturers as well as for the scientific
user community along their path to obtain an even closer look into the nanoworld.

***

LS11387

JAMMING CAN OCCUR EVEN IN THIN GRANULAR LAYERS
Granular materials play a key role in a broad spectrum of problems
ranging from industrial handling to shear in tectonic fault zones.
Granular jamming has received considerable attention as a possible
mechanism for frictional stick-slip such as occurs in earthquake
faulting.

We study the jamming transition for layers of spherical beads ranging
in thickness from 1 to 3 times the grain diameter d. Our work
represents the first systematic study of thin granular layers and
reveals a previously unobserved property of granular matter: the
jamming transition in thin layers is discontinuous and, in contrast to
bulk granular matter, associated with a decrease in packing fraction.
As layer thickness increases slightly above d, friction jumps
discontinuously from 0.02 to > 0.1. We interpret the jump as the
transition from rolling to jamming. Effective granular pressure P
increases as a power law of the excess layer thickness above a
critical value for jamming. Layers below the critical thickness thin
to a monolayer and weaken. For thin layers, friction and P increase
as packing fraction decreases near the jamming transition.

Tuesday, November 11, 2008

November 11, 2008

LU11087B

Magnetism induces a shape change

Magnetic field affects shapes of magnetic crystals, yet commonly these
changes amount to a few parts per million (ppm). Only a handful of
materials exhibit ?magnetostriction? reaching thousands of ppm.
Overwhelmingly, such crystals have anisotropic charge densities from
atomic orbitals coupled with magnetic moments and as the latter align
with the field, they pull the associated charge, thereby altering
external dimensions of the crystal. This has led to devices such as
field and stress sensors, and transducers. This paper shows that the
applied field does indeed line up the Gd magnetic moments in a
compound with Ni, but the giant anisotropic linear magnetostriction
with negligible volume change is unexpected because the charge density
of Gd is spherical (isotropic). Magnetostriction arises because the
electrons that are responsible for electrical conductivity interact
with the moment-carrying electrons of Gd and gain an additional
magnetic moment as the field is increased. This also affects the
chemical bonding. The same happens on cooling, when the Gd moments
order spontaneously. Calculations and experiments show a smooth
transition between the magnetically ordered and non-magnetic states.
The smooth magnetostriction may have applications in advanced sensors
and energy conversion devices, but currently cooling by liquid
nitrogen is required.


***

LP11420BR

Entangled states in graphene- detection and use


Graphene has captured the interest of the physics community
because of its many versatile applications to microelectronics
and its connection to relativistic quantum field theory.
Here, we create and detect entangled states in graphene sheets where
superconductivity is induced via the proximity effect. The
idea involves extracting the Cooper pair, the most entangled
state found in matter, into different sheets such that the
electrons involved are not paired but remember their original correlations.
In normal metals coupled to a superconductor it was found that such processes
detected via the current-current correlations across the two
normal metals could be positive. This is in contrast to
the expectation that since there are only fermionic excitations
in normal metals these correlations should be negative. The
possibility of obtaining positive value is a good indicator of
spin singlet entanglement. Unfortunately, experiments in such a normal metal
Y-junction coupled to a superconductor do not give the desired
results. One reason being the difficulty in manipulating the
Fermi energy of metals with the application of a gate voltage.
This difficulty does not arise in graphene, where its Fermi
energy can be very easily tuned. These entangled
states could be used to teleport and swap the entanglement between pairs of electrons. In theory, it is possible to
teleport the information encoded in a quantum object to
another place arbitrarily far via entangled states. In
practice, though, only information about a photon has been
teleported. It is advantageous to perform quantum
teleportation via electrons. The aim being to speed up
processing since teleportation would obviate any need for the
physical transport of electrons.

***

LU11548

Universe created by extra dimensional bubble collision.

In this paper, I suggest the possibility that the entire visible
universe may have been produced from a single bubble that expanded and
collided with *itself* after winding round a compact extra dimension.

The extra dimension is "compact" because, like the surface of the
earth, if you go far enough in one direction you end up where you
started. More to the point, the bubble goes "far enough" and ends up
colliding with itself, and that collision produces all the matter and
radiation and everything we see around us.

The extra dimension would have to be really small for us not to have
noticed it yet. The Large Hadron Collider, inter alia, is searching
for small extra dimensions.


***

LU11958ER

Dynamics of molecular clocks reveal hidden structure of cell populations

Telomeres are DNA stretches at the ends of chromosomes that shorten with each cell division, essentially acting as molecular clocks, which eventually signal cells to stop dividing. Although telomeres of cells grown in a plate shorten linearly with each cell division, the average telomere length of white blood cells in our body decreases non-linearly - a rapid decrease in the first years of life is followed by a successively slower decrease. In this paper we show that this dynamics can be explained if cell populations in our body contain a small pool of 'repopulating' cells with long telomeres, which provide an influx into a larger pool of derived cells, telomeres of which shorten linearly. The model gives rise to an exponential decrease in average telomere length providing an excellent fit to available data, and allows estimating the biologically relevant parameters such as the repopulation rate from the telomere dynamics. The model also accounts for the previously unexplained phenomena of telomeres elongation after cells are exposed to stress, e.g. in AIDS patients and after bone marrow transplantation. Such elongation can be explained by an increase in the influx of repopulating cells to compensate for the loss of derived cells. In summary the model provides a tool for inferring the hidden structure of cell populations from the dynamics of molecular clocks.

***

ET10480

Re-entrant phase transition found with new mesoscopic model

Small solid particles - colloids - that attract each other at short
distances are known to form either a crystalline structure or a
disordered (liquid or vapor) phase. Since about a decade we know that if
the range of attraction is less than 1/6 of the particle diameter, such
a colloidal crystal does not melt on heating - as for longer force range
- but it sublimes into its gas phase. We have now found from computer
simulation that if the range of attraction is decreased further and
further, something quite unexpected happens. For a force range shorter
than 1/1000th of the particle diameter a stable liquid phase reappears
again. On heating such a crystal, it first melts and then vaporizes.
Why? For such a small attraction range the particles have no room to
move in a crystalline structure, whereas some freedom is left in the
liquid phase. The same mesoscopic model (so called because the objects
in the simulation are small, but much larger than atoms) can be applied
to powders and granular solids. Then it correctly predicts the fracture
behavior seen in experiments.