LS13209 - One of many functions of an animal appendage, such as a tail or a feather, is to enable or enhance locomotion. In a calm stream of water or air, a flexible tail-like structure attached to a hind end of a body will spontaneously start to flap – similar to the fluttering of a flag attached to a pole – in the same direction as the incoming stream of flow. This may, however, only be true if the tail (or flag) is sufficiently long. Researchers in Italy and Sweden demonstrate on a simple model that if the flexible structure on the body is short, it flaps at an angle of 20-40 degrees either to the right or left of the incoming stream of flow, thus inducing a net force on the body which may move transversely at no additional cost. This discovery reveals how the mere presence of appendages on animals contributes to locomotion via the interaction with the surrounding fluid flow, without any effort whatsoever from the animal. These findings may also become useful in technological applications where it is of interest to generate a side/lift force on a moving body without increasing the drag from the surrounding fluid.
This is a blog compiling the latest physics news from the American Physical Society. News sources include lay summaries of Physical Review papers written by the papers' authors, APS Physics Tip Sheets from APS staff, and previews of talks from the Society's meetings.
Thursday, September 13, 2012
Effortless motion of an animal via skew tail flapping
LS13209 - One of many functions of an animal appendage, such as a tail or a feather, is to enable or enhance locomotion. In a calm stream of water or air, a flexible tail-like structure attached to a hind end of a body will spontaneously start to flap – similar to the fluttering of a flag attached to a pole – in the same direction as the incoming stream of flow. This may, however, only be true if the tail (or flag) is sufficiently long. Researchers in Italy and Sweden demonstrate on a simple model that if the flexible structure on the body is short, it flaps at an angle of 20-40 degrees either to the right or left of the incoming stream of flow, thus inducing a net force on the body which may move transversely at no additional cost. This discovery reveals how the mere presence of appendages on animals contributes to locomotion via the interaction with the surrounding fluid flow, without any effort whatsoever from the animal. These findings may also become useful in technological applications where it is of interest to generate a side/lift force on a moving body without increasing the drag from the surrounding fluid.
Wednesday, September 12, 2012
Space-time crystals of trapped ions
LU13347 - Spontaneous symmetry breaking can lead to the formation of time crystals, as well as spatial crystals. Here we propose a space-time crystal of trapped ions and a method to realize it experimentally by confining ions in a ring-shaped trapping potential with a static magnetic field. The ions spontaneously form a spatial ring crystal due to Coulomb repulsion. This ion crystal can rotate persistently at the lowest quantum energy state in magnetic fields with fractional fluxes. The persistent rotation of trapped ions produces the temporal order, leading to the formation of a space-time crystal. We show that these space-time crystals are robust for direct experimental observation. We also study the effects of finite temperatures on the persistent rotation. The proposed space-time crystals of trapped ions provide a new dimension for exploring many-body physics and emerging properties of matter.
Thursday, September 6, 2012
Why your boss ignores you
LQ13899 - Remember the last time you emailed your boss about something but never received an answer? We show that such behavior should not be taken personally. It is much rather the consequence of clever communication being the key to success. Analyzing the web formed by millions of email connections in the University of Oslo shows us that people constantly make cunning trade-offs – those between paying attention to some while ignoring others. Imagine climbing a pyramid of people. Reaching the top means greatest popularity. Getting ahead means talking to those above. To progress, you are required to be an active social player – important co-workers must receive messages but unfortunately others must be ignored. In the end, even the most skilled socializers run into the dilemma that they cannot keep up with their own popularity. As more and more employees on the pyramid look up to them, they cannot properly address even important messages. This links our human social behavior to that of primates and other animals, where the number of stable social contacts was suggested to be limited by brain-capacity.
Minimizing viscous fluid fingering
LT13129 - The classical viscous fingering problem is one of the most
studied among fluid dynamic systems, having a wide spectrum of
applications ranging from oil recovery processes to biodynamics of
living cells. Conventionally, it considers the injection of a fluid into
another of higher viscosity, at a constant injection rate, in narrow
channel passages. The result is the development of visually striking,
highly ramified interfacial patterns. Despite their visual appeal and
physical relevance, the emergence of such convoluted structures is not
always desirable. In fact, the search for mechanisms to prevent the
development of these complicated morphologies is of fundamental
importance to a number of areas in science and technology. Now, a group
of researchers has reported a remarkably simple solution for the problem
of minimizing the viscous fingering instability. Using a variational
technique they have shown that interfacial instabilities are
dramatically restrained if a time-dependent, linearly-increasing
injection rate is employed. Their analytic results are confirmed by
experiments and numerical simulations. This is illustrated in the
figure, where typical radial flow interfacial patterns are depicted if a
constant injection rate (left), or the optimal linearly growing
injection rate (right) is used.
Wednesday, August 29, 2012
Catching Bubble-Driven Micromotors in Action
LS13437 - Catalytic micromotors are extremely small moving particles, about the
size of bacterial organisms, that convert chemical energy through a
catalytic reaction involving bubble generation, to propel the particle
through the fluid. Until now direct observation of the bubble
propulsion for spherical micromotors has eluded researchers since bubble
formation is very difficult on convex surfaces. By using larger
micromotors with a reduced surface curvature and an ultra-fast camera,
the bubble growth and burst processes that drive spherical micromotors
have been resolved. Interestingly, it was found that bubble growth
tends to propel the micromotor in one direction, while the bursting of
the bubble that leaves a zone of depression pulls the micromotor back.
The competition between the two processes creates an almost back and
forth motion of the micromotor. However, the growth process induces a
greater displacement than that in the burst process, giving the
micromotor a net displacement in one direction. A theory is developed
that quantitatively describes this behavior. These results provide
further insight into the behavior of micromotors, which are expected to
have various biomedical applications in the future, such as advanced
drug delivery.
Weighing Cells with Pictures
Physicists determine the weight of cells with a standard optical microscope.
LK12971 - Researchers have now developed a technique to determine the mass
of cells and microorganisms with a standard
light microscope. Beginning in the 1950s, laboratories around the world have
concocted ingenious methods to weigh the tiny organic samples. Until now, however, these methods have all relied on custom-built
instruments, involved mathematical analysis, and sample preparations that are
often not compatible with living tissue. A new image-processing algorithm now enables
the reconstruction of the three-dimensional mass distribution inside cells from microscopic images. The method paves the way for
general microscope users to perform sensitive optical measurements of organisms
and individual cells at the picogram (trillionth of a gram) level.
LK12971 - Researchers have now developed a technique to determine the mass
of cells and microorganisms with a standard
light microscope. Beginning in the 1950s, laboratories around the world have
concocted ingenious methods to weigh the tiny organic samples. Until now, however, these methods have all relied on custom-built
instruments, involved mathematical analysis, and sample preparations that are
often not compatible with living tissue. A new image-processing algorithm now enables
the reconstruction of the three-dimensional mass distribution inside cells from microscopic images. The method paves the way for
general microscope users to perform sensitive optical measurements of organisms
and individual cells at the picogram (trillionth of a gram) level.
Tuesday, August 28, 2012
In Search of Rogue Wave Sources
LU13570 - New experiments presented in this paper reveal
that extreme
wave events, or “rogue waves” on the surface of a vertically
vibrated liquid are
caused by the interaction between oscillating solitons. Such
solitons, also
known as oscillons, have been found in a variety of physical
systems such as
granular medium, non-Newtonian fluids, optical media and plasmon
oscillons in nanoparticle
arrays. New observations made in the water surface ripple and
reported here suggest
that oscillons interact within a lattice and that such interaction
causes their
horizontal mobility and merger which leads to the formation of
closed regions,
or craters. Rogue waves, or strong vertical jets originate from
the centers of
such craters. The probability of large wave events greatly
increases when
oscillons move faster on the surface of water. These results will
be useful in
understanding physics of the rogue wave generation in other
nonlinear systems.
Testing Stressed Viruses
LK13179 - One of the big questions about materials at the nanoscale is whether
macroscopic theories can be applied to nano-sized systems.
To answer this
question, we focus on self-assembling, viral nanoparticles to
test the predictions
of elasticity theory. Of all
known viruses those with icosahedral symmetry are the most
common. Their
structure can be described by folding a hexagonal lattice into a
sphere-like
configuration. By doing so defects with 5-fold symmetry are
created at the
icosahedral vertices. According to
elasticity theory these vertices should be under a permanent
pre-stress, a
prediction which never has been verified experimentally. Here we
compare naturally occurring viruses with those that have missing
proteins at
their vertices, and test the hypothesis that the latter
particles are
stress-free. Deforming the viruses by Atomic Force Microscopy
and comparing our
results to detailed simulations has verified our hypothesis
about pre-stress.
This is the first time that the predictions about pre-stressed
vertices in
viral particles has been demonstrated experimentally and is a
huge support for
the use of continuum elasticity to describe nanometer sized
objects.Experimental Violation of Heisenberg's Uncertainty Principle
LU13293 - While there is a rigorously proven relationship about uncertainties intrinsic to any quantum system, often referred to as "Heisenberg's Uncertainty Principle," Heisenberg originally formulated his ideas in terms of a relationship between the precision of a measurement and the disturbance it must create. Although this latter relationship is not rigorously proven, it is commonly believed(and taught) as an aspect of the broader uncertainty principle. Here, we experimentally observe
a violation of Heisenberg's \measurement-disturbance relationship", using weak measurements to
characterize a quantum system before and after it interacts with a measurement apparatus. Our
experiment implements a 2010 proposal of Lund and Wiseman to con rm a revised measurement-
disturbance relationship derived by Ozawa in 2003. Its results have broad implications for the
foundations of quantum mechanics and for practical issues in quantum mechanics.
Leading the Way to Lead-Free Piezoelectrics
LQ13398 - Energy
and environment are two pressing global challenges. Piezoelectric
materials enable the conversion between
electrical and mechanical energies, and have been used in many important applications, such as devices
for ultrasound medical imaging and for energy harvesting from vibrations. In the past
six decades, lead-containing ceramics (greater than 60% weight of lead) have
dominated the piezoelectric technology even though they pose a serious threat to the environment and human health. For best piezoelectric performances, the
compositions are fine tuned to be at the so-called morphotropic phase boundaries
and the ceramics go through a poling processing where they are exposed to a
highest possible electric field. A recent discovery (to be published in the September 6 issue of Physical Review Letters) breaks the ice for new lead-free piezoelectrics. The original approach of
poling to the highest possible field is incorrect and the composition is not
necessary to be at the morphotropic
phase boundary. Such
a fundamental alteration to the long-standing paradigm adds a new dimension to the development of
high-performance lead-free piezoelectrics. Learning from an Eggshell
LU13685 - If you squeeze an eggshell along its major axis, the shell is strikingly
rigid and it is extremely challenging to break it with our bare hands.
Conversely, if the eggshell is compressed along its equator, the
resulting deflections are larger and, past a critical load one is
typically able to fracture it. In our paper, we have rationalized this
difference in the rigidity of an eggshell depending on the shell-load
orientation to be due to the local geometry near the points of
indentation. We have introduced a predictive framework for the rigidity
of thin elastic shells which can also account for the situation when the
shell is over-pressurized. Our concept of Geometry-Induced Rigidity can
be used in reverse, as a precision non-destructive tool, to measure
parameters of a shell (e.g. thickness) upon knowing the geometry of the
underlying surface and the local mechanical response. The
scale-invariance of Geometry-Induced Rigidity suggests that our
framework should find uses across length scales: from the mechanical
testing of viral capsids through Atomic Force Microscopy, to ocular
tonometry procedures or in the design of architectural shells. All this
work was inspired by the remarkable physics of an elegant eggshell!Saturday, August 25, 2012
Jet impact on a soap film
LG14014E - We experimentally investigate the impact of a liquid jet on a soap film. We observe that the jet never breaks the film and that two
qualitatively different steady regimes may occur. The first one is a refraction-like behavior obtained at small incidence angles when the jet crosses the film and is deflected by the film-jet interaction. For larger incidence angles, the jet is absorbed by the film, giving rise to a new class of flow in which the jet undulates along the film with a characteristic wavelength. Besides its fundamental interest, this study
presents a new way to guide a micro-metric flow of liquid in the inertial
regime and to probe foam stability submitted to violent perturbations
at the soap film scale.
Tuesday, August 21, 2012
Geometric Mechanics of Curved Crease Origami
LT13067 - Origami has been widely applied to fields in structural engineering,
architecture, and design, contributing to solutions of many practical
problems of these fields. Although the idea that a sheet of paper can be
folded along an arbitrary curve seems unfamiliar, such folds have been
incorporated into origami sculptures for quite some time, and are also
seen in decorative and functional boxes such as the McDonald's Fries
Box. Though the crease of an open closed fold lies flat on the plane, a
closed crease buckles dramatically and appears mechanically stiff.
Previous work has described the geometry of curved folds. For the first
time, we have presented an analytical and simulation model of the
mechanics of curved fold origami. We show that it is the interaction
between the geometry of the fold, the mechanical tendency to avoid
in-plane stretching, and the bending energy of the sheets that produce
both the three-dimensional shapes observed and the mechanical stiffness.
Wednesday, August 15, 2012
Slime Mold Vein Networks Give Hint To Cure Cancer
LQ13471 - Slime molds are omnipresent in nature. They feed on organic material and avoid direct sunlight. The typical damp-fresh smell in the woods is emanating from them. These slimy creatures appear primitive, yet they have developed a sophisticated strategy to transport food and deliver environmental information. They use an intricate system of veins organized in a network. Most unexpectedly, slime molds give us a hint to cure cancer. Their smart mechanism of network formation is so general that it can be applied to analyze the development of blood supply via vessel in tumors. Thus, the effectiveness of different therapies in hindering tumor growth could be tested. In order to arrive at this conclusion researchers have used exact mathematical tools from topology. This branch of mathematics deals with the ways general objects are connected independent of their shape. Friday, August 10, 2012
Sorting out blood flow
LT13043 - Blood contains many different types of cells, each with specific functions in the body. As blood flows, these cells segregate, with the white blood cells (WBCs) and platelets preferentially found near blood vessel walls. This phenomenon, called margination, allows for efficient immune surveillance by the WBCs and rapid response to vessel wall injuries by platelets. Our work demonstrates how the physical properties of different cells lead to this important observation. As the stiff WBCs and platelets collide with the more flexible red blood cells during flow, they are pushed aside while having little effect on the motion of the red blood cells, a process that ultimately leads to the trapping of WBCs and platelets near the vessel walls. A simple model of blood flow that accounts only for these collisions and the flow-induced repulsion of the cells from the vessel walls is able to match results from detailed numerical simulations. The understanding provided by this study will be helpful in designing effective drug delivery particles that target the vascular walls for treatment of cancer or atherosclerosis. Margination has also been employed in biomimetic microfluidic devices to separate WBCs and platelets from whole blood, which could be helpful in treating leukemia or for platelet rich plasma therapy (used by athletes for healing injuries). The principles established in our study will aid the development of these devices.
Image processing of two photons
LT13248A - The where-about of two photons along a one-dimensional line can be generally
described by the probability of the two photons to have a certain combination
of positions along the line. This is a two-dimensional distribution, as is, for
example, the intensity distribution that makes up a classical image. There
are many ways in which an image can be processed and manipulated. Could such methods be used
for controlling the spatial distribution of two photons, even if it represents
a highly non-classical, quantum state of light? Thursday, August 9, 2012
New Quantum Computer Blueprint
Physical Review X - We develop a layered quantum-computer architecture, which is a systematic framework for tackling the individual challenges of developing a quantum computer while constructing a cohesive device design. We discuss many of the prominent techniques for implementing circuit-model quantum computing and introduce several new methods, with an emphasis on employing surface-code quantum error correction. In doing so, we propose a new quantum-computer architecture based on optical control of quantum dots. The time scales of physical-hardware operations and logical, error-corrected quantum gates differ by several orders of magnitude. By dividing functionality into layers, we can design and analyze subsystems independently, demonstrating the value of our layered architectural approach. Using this concrete hardware platform, we provide resource analysis for executing fault-tolerant quantum algorithms for integer factoring and quantum simulation, finding that the quantum-dot architecture we study could solve such problems on the time scale of days.
Tuesday, August 7, 2012
Light-controlled metamaterial optics
LR13197 - We suggest and verify experimentally a novel practical approach for dynamic noncontact tuning of composite structures. This approach allows metamaterials to acquire almost any desirable spatially inhomogeneous properties by interacting with visual light patterns projected onto the metamaterial, which may lead to a new generation of electromagnetic composites whose local properties can be tuned continuously. More specifically, our approach works by applying a hand-crafted light profile to an array of light-tunable magnetic meta-atoms. The illumination affects the magnetic resonances of the meta-atoms individually. Thus, for the first time we achieve a practical design of a metamaterial in which the constitutive parameters may be changed at will and gradually within a material volume. We fabricate the first reconfigurable light-tunable metamaterial that under different illumination profiles can operate as a controllable beam deflector or/and focusing or defocusing reflector.
Thursday, August 2, 2012
No Maxwell’s Demon at work in Ranque-Hilsch vortex tubes
PRL - The
long-standing problem of how a vortex tube simultaneously produces hot
and cold air streams with nothing more than the injection of a
high-speed peripheral air stream has been unravelled in this paper by
simplification of the device to its lowest single element – a duct
rotating about a central outlet delivering air from its periphery. This
simple case shows unequivocally that a pressure gradient driving air
flow against a centrifugal gravitational field results in the air giving
up kinetic and internal energy as angular propulsion, resulting in a
temperature reduction at the central outlet. The theory presented is
based on thermodynamic principles and shows that the maximum temperature
drop is a function of the velocity of the gas at the periphery of the
tube. The article also shows that the effect is easily scaled up.Studying the Light Response of Living Photoreceptor Cells
LN12705 - Eyes of living organisms represent advanced light harvesting systems, developed through hundreds of millions years of evolution. Some of their features are comparable or even superior to existing man-made photodetection devices. For example, rod photoreceptor cells of the retina, which are responsible for night vision and form the focus of the present study, represent miniaturized photodetectors containing a photosensitive element (rhodopsin pigment) along with a ‘‘built-in’’ chemical power supply (ATP produced by mitochondria). They have sensitivity down to single-photon level, and demonstrate a remarkable low noise operation. Understanding such properties of nature-given photodetectors stimulates considerable interest in interfacing them with sources of nonclassical light, such as light with a ‘‘fixed’’ number of photons, and ‘‘squeezed’’ light. We analyzed the electrophysiological response of an isolated rod photoreceptor of the African Clawed Frog (Xenopus laevis) under stimulation by coherent and pseudothermal light sources. Using the suction-electrode technique for single cell recordings and a fiber optics setup for light delivery allowed measurements of the major statistical characteristics of the rod response. The results indicate differences in average responses of rod cells to coherent and pseudothermal light of the same intensity and also differences in signal-to-noise ratios and second-order intensity correlation functions. These findings should be relevant for interdisciplinary studies seeking applications of quantum optics in biology.
Tuesday, July 31, 2012
Proteins in cell membranes studied using string theory to help unravel the mystery of sneezing
LQ13362 - We see how forces arising from thermal fluctuations could affect proteins embedded in cellular membranes by applying conformal field theory methods originally developed by string theorists. Our research is inspired by an astonishing recent discovery that cell membranes can separate into two fluid regions (the way oil and water separate, but in two dimensions), forming microscopic fractal puddles of each in the membranes of living cells. We find that fluctuations in this complicated two-dimensional soup lead to long-range attractive forces between proteins preferring the same type of puddle, and repulsion between proteins preferring dissimilar puddles. These forces could help explain many mysteries in the experimentally observed behavior of membrane proteins. For example, they may be important in clumping together the proteins that detect and respond to allergens in pollen, initiating a complex sequence of events that eventually makes you sneeze.
Friday, July 27, 2012
Smooth change from liquid to solid in granular media
LQ13873 - A shaken confined granular system presents a very unusual
solid-liquid-like phase transition; it occurs above a certain heating
threshold and, as this paper shows, it can be either abrupt or
continuous. For equilibrium systems it is believed that a liquid-solid
transition is always abrupt: a disordered liquid state cannot change
smoothly to an ordered solid state because of their different
symmetries. However, recent studies show that confined equilibrium
systems, like water nano-films, can behave differently. In this paper,
we show that a shaken non-equilibrium confined granular system also
differs from the classical image. The transition can be either abrupt or
smooth depending on the vertical height and filling density, meaning
that one can go smoothly from one state to the other by changing a
control parameter. In the experiments, density fluctuations do not
present strong variations at the transition, whereas the way grains are
locally ordered varies strongly, either abruptly or continuously. In the
second case, grains smoothly order in a square symmetry in highly
fluctuating domains. The associated fluctuations, characteristic size
and relaxation time seem to diverge at the transition in a way described
by the non-equilibrium theory of phase transitions.
What will happen when a bubble is close to a flexible soft boundary?
ER10845 -The interaction between an
oscillating bubble and a flexible soft boundary is an important
phenomenon, which is commonly found in nature, marine industrial
applications, and medical treatments. The behavior of an oscillating
bubble is greatly dependent on the characteristics of a boundary that it
is placed near to. If the boundary is rigid, the bubble moves towards
it; whereas if the boundary is a free surface,
the bubble migrates away from it. The behavior of the bubble near a
flexible soft boundary would fall in-between these mentioned limiting
cases and is more complex. We investigate the physical behavior of the
interaction between a bubble and a flexible soft
boundary numerically and experimentally. The results from this study
may provide physical insights into the complex physics of bubble-rubber
interaction. The understanding is possibly applicable in biomedicine for
drug delivery to tissue, which is a soft material.
It is also probably useful in the marine industry where ultrasonic
bubbles are generated for the defouling of the ship surfaces which has
been coated with an elastic material. There is also potential interest
in underwater explosion near an elastic structure.
With whom do you want to share rumors, a blabbermouth or a person of few words?
EG10922 - On
a social network, it seems better to transfer information
preferentially toward those who have many social links ("blabbermouths")
because they have larger impact on the network. However, at the same
time they can be bottlenecks for spreading information since information
tends to concentrate on these blabbermouths and becomes redundant. This
paper shows that to achieve a faster spread over the network, it is
indeed better to spread information preferentially toward those who have
few social links (reverse preferential).
The Abraham force: the end of a century in hiding?
ASJ1069 - A century after Abraham predicted his elusive force
we propose a conceptually simple way to see it in the laboratory. The
rival theories of Abraham and Minkowski, both presented around 1910,
seemed to give slightly different predictions
for the physics of light travelling inside, say, glass or water. In
particular, Abraham says that fields that change with time will give a
little extra push to the material compared to what Minkowski predicts:
the Abraham force. It's proved very hard to think
of ways to detect this force, however, it existence is still in
question. Using a series of intense and very short laser pulses, we show
theoretically that the Abraham force could be detected in a way that
is, at least conceptually, very simple. When a light
pulse enters an optical fiber, the Abraham force would give a small
"kick", setting the fiber in motion. As the pulse exits, a "kick" in the
opposite direction makes it stop, but in the meantime the fiber has
moved a tiny distance. Repeat this process enough
times, and the distance becomes measurable. By winding a long fiber
onto a cylinder and using a rapid repetition of short laser pulses, the
Abraham force makes the cylinder rotate if it hangs by a thin thread.
The rotation could be made so large as to be visible
to the naked eye. And if the Abraham force isn't there, the cylinder
will rotate in the opposite direction.
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