Highlights

Inheritance Patterns in Citation Networks Reveal Scientific Memes

Tobias Kuhn, Matjaž Perc, and Dirk Helbing

Phys. Rev. X 4, 041036 (2014) - Published 21 November, 2014

An automated analysis of the words in 117 years worth of the Physical Review selects scientific memes—significant ideas that emerge and spread through the literature.

Odor Landscapes in Turbulent Environments

Antonio Celani, Emmanuel Villermaux, and Massimo Vergassola

Phys. Rev. X 4, 041015 (2014) - Published 28 October, 2014

A statistical-physics model provides an accurate description of how animals communicate via pheromones in a turbulent atmospheric environment.

Photonic Hypercrystals

Evgenii E. Narimanov

Phys. Rev. X 4, 041014 (2014) - Published 27 October, 2014

A design for a photonic crystal made with so-called hyperbolic metamaterials could provide unprecedented control of light waves confined to the surface.

Matchmaker, Matchmaker, Make Me a Match: Migration of Populations via Marriages in the Past

Sang Hoon Lee (이상훈), Robyn Ffrancon, Daniel M. Abrams, Beom Jun Kim (김범준), and Mason A. Porter

Phys. Rev. X 4, 041009 (2014) - Published 16 October, 2014

Few quantitative studies of historic human migration exist because of a dearth of data. Now, using geographical information from Korean family books, scientists develop a physics-based analyses of clan migration.

Penetration of Action Potentials During Collision in the Median and Lateral Giant Axons of Invertebrates

Alfredo Gonzalez-Perez, Rima Budvytyte, Lars D. Mosgaard, Søren Nissen, and Thomas Heimburg

Phys. Rev. X 4, 031047 (2014) - Published 10 September, 2014

Experiments on neuron fibers from earthworms and lobsters reveal that two nerve pulses that collide do not annihilate, contrary to common beliefs of nerve electrophysiology.

Observation of a Dissipation-Induced Classical to Quantum Transition

J. Raftery, D. Sadri, S. Schmidt, H. E. Türeci, and A. A. Houck

Phys. Rev. X 4, 031043 (2014) - Published 8 September, 2014

A circuit for microwave photons provides a useful test bed for nonequilibrium physics.

Universal Borromean Binding in Spin-Orbit-Coupled Ultracold Fermi Gases

Xiaoling Cui and Wei Yi

Phys. Rev. X 4, 031026 (2014) - Published 13 August, 2014

Borromean binding describes the case in which three objects are more favorably bound than two. Scientists calculate that Borromean binding occurs in ultracold Fermi gases with synthetic spin-orbit coupling, which is universal against short-range details of interaction potentials.

Focal Molography: Coherent Microscopic Detection of Biomolecular Interaction

Christof Fattinger

Phys. Rev. X 4, 031024 (2014) - Published 11 August, 2014

Noncovalent biospecific interactions between macromolecules play a crucial role in biology. The ability to detect them in real time is key for the understanding of biology at the molecular level and also for the development of diagnostic tests.

Evolution of Quantum Fluctuations Near the Quantum Critical Point of the Transverse Field Ising Chain System CoNb2O6

A. W. Kinross, M. Fu, T. J. Munsie, H. A. Dabkowska, G. M. Luke, Subir Sachdev, and T. Imai

Phys. Rev. X 4, 031008 (2014) - Published 14 July, 2014

Quantum fluctuations near absolute zero may be responsible for the exotic superconductivity of cuprates and other materials. A new study finds that quantum fluctuations of Ising chains in CoNb2O6 in a transverse magnetic field survive at surprisingly high temperatures.

Quantum Bidding in Bridge

Sadiq Muhammad, Armin Tavakoli, Maciej Kurant, Marcin Pawłowski, Marek Żukowski, and Mohamed Bourennane

Phys. Rev. X 4, 021047 (2014) - Published 12 June, 2014

In a game of duplicate bridge, better information sharing between two partners about their cards means better chances of winning. Researchers devise, and experimentally demonstrate, the first quantum information-sharing protocol that lets players improve their bids, expanding the understanding and use of quantum resources.

Entropy of Leukemia on Multidimensional Morphological and Molecular Landscapes

Jose M. G. Vilar

Phys. Rev. X 4, 021038 (2014) - Published 28 May, 2014

Data-intensive medical tests require scientists to distill relevant information from massive datasets. Researchers now show that entropy—a concept traditionally used in statistical physics—can characterize both leukemic and normal cell populations, enabling correct diagnoses of leukemia.

Optimization of Quantum Trajectories Driven by Strong-Field Waveforms

S. Haessler, T. Balčiunas, G. Fan, G. Andriukaitis, A. Pugžlys, A. Baltuška, T. Witting, R. Squibb, A. Zaïr, J. W. G. Tisch, J. P. Marangos, and L. E. Chipperfield

Phys. Rev. X 4, 021028 (2014) - Published 19 May, 2014

Lasers can be used to steer an electron, yielding extreme-ultraviolet light pulses when the accelerated electron recollides with its parent atom. Researchers have enhanced the flux of the extreme-ultraviolet pulses by a factor of 100, enabling the study of extremely fast (subfemtosecond) electron dynamics.

Observation of Optical Undular Bores in Multiple Four-Wave Mixing

J. Fatome, C. Finot, G. Millot, A. Armaroli, and S. Trillo

Phys. Rev. X 4, 021022 (2014) - Published 5 May, 2014

Undular bores, e.g., large tidal waves that travel upstream in river estuaries, are a fascinating nonlinear wave phenomenon. The conditions needed to create them also occur in optical systems. A new experiment using four-wave mixing to generate multiple undular bores and their interactions in optical fibers provides an opportunity to study them in a laboratory setting.

Frequency-Comb-Assisted Terahertz Quantum Cascade Laser Spectroscopy

S. Bartalini, L. Consolino, P. Cancio, P. De Natale, P. Bartolini, A. Taschin, M. De Pas, H. Beere, D. Ritchie, M. S. Vitiello, and R. Torre

Phys. Rev. X 4, 021006 (2014) - Published 9 April, 2014

The spectral purity of quantum cascade lasers (QCL) suggests their use in high-precision metrology applications at terahertz wavelengths. By combining a QCL with a THz frequency comb, scientists have been able to measure the frequency of a rotational transition of a gas (methanol) with a record-breaking precision of four parts in one billion.

Electronic Predetermination of Ethylene Fragmentation Dynamics

Xinhua Xie, Stefan Roither, Markus Schöffler, Erik Lötstedt, Daniil Kartashov, Li Zhang, Gerhard G. Paulus, Atsushi Iwasaki, Andrius Baltuška, Kaoru Yamanouchi, and Markus Kitzler

Phys. Rev. X 4, 021005 (2014) - Published 7 April, 2014

Removing electrons in a polyatomic molecule from their orbitals can split the molecule into two ionic fragments. The precise fragmentation pathway taken depends on the molecular orbitals. Scientists show that selective fragmentation can be achieved by controlling the intensity and duration of the laser pulses used to remove the electrons.

Decay-Assisted Laser Spectroscopy of Neutron-Deficient Francium

K. M. Lynch, J. Billowes, M. L. Bissell, I. Budinčević, T. E. Cocolios, R. P. De Groote, S. De Schepper, V. N. Fedosseev, K. T. Flanagan, S. Franchoo, R. F. Garcia Ruiz, H. Heylen, B. A. Marsh, G. Neyens, T. J. Procter, R. E. Rossel, S. Rothe, I. Strashnov, H. H. Stroke, and K. D. A. Wendt

Phys. Rev. X 4, 011055 (2014) - Published 28 March, 2014

In the quest to understand atomic nuclei, laser spectroscopy is a valuable tool. Combining laser excitation and ionization of atoms with tracking and analysis of the associated alpha decay, a novel technique demonstrates its capability to probe with high sensitivity the hyperfine structure of exotic nuclear isotopes and determine their fundamental nuclear observables.

Demonstration of Long-Lived High-Power Optical Waveguides in Air

N. Jhajj, E. W. Rosenthal, R. Birnbaum, J. K. Wahlstrand, and H. M. Milchberg

Phys. Rev. X 4, 011027 (2014) - Published 26 February, 2014

Laser filaments are a promising means of transporting light energy over long distances, but they can only carry an average power of a few watts, thus limiting certain applications. Experiments now overcome this limitation by demonstrating that the thermal wake of a bundle of filaments provides a long-lived air waveguide that can channel laser beams with an extremely high average power.

Complexity in Surfaces of Densest Packings for Families of Polyhedra

Elizabeth R. Chen, Daphne Klotsa, Michael Engel, Pablo F. Damasceno, and Sharon C. Glotzer

Phys. Rev. X 4, 011024 (2014) - Published 25 February, 2014

The maximum packing density of particles is greatly affected by their shape, an important issue in nanotechnology, biology, and industry that is nevertheless poorly understood mathematically. This comprehensive study takes an analytical and computational approach to calculating the highest-known packing density of over 55,000 related shapes, leading to new guidelines on how to prepare particles for maximum packing efficiency.

Subdiffraction-Limited Quantum Imaging within a Living Cell

Michael A. Taylor, Jiri Janousek, Vincent Daria, Joachim Knittel, Boris Hage, Hans-A. Bachor, and Warwick P. Bowen

Phys. Rev. X 4, 011017 (2014) - Published 4 February, 2014

Quantum effects may help devise new imaging schemes that can overcome classical constraints posed by noise and diffraction. By using squeezed states of light in photonic force microscopy (PFM), scientists have demonstrated a 14% quantum enhancement of PFM’s spatial resolution, imaging details of living yeast cells with a resolution of 10 nm.

Low-Dimensional Dynamics of Populations of Pulse-Coupled Oscillators

Diego Pazó and Ernest Montbrió

Phys. Rev. X 4, 011009 (2014) - Published 29 January, 2014

The Winfree model, a well-known mathematical model for describing collective synchronization in living systems, such as flashing fireflies, has been under-utilized because of its daunting technical complexity. Now scientists have found a way to dramatically reduce it to a technically tractable form and demonstrate the power of the reduction with findings of new “chimera” states in populations of pulse-coupled oscillators.

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