Recent Articles

Dual Dirac Liquid on the Surface of the Electron Topological Insulator

Chong Wang and T. Senthil

Phys. Rev. X 5, 041031 (2015) - Published 20 November, 2015

Topological insulators possess properties of both conductors and insulators. A theoretical study demonstrates that the surface state of a Fu-Kane-Mele topological insulator can access all of the other surface states of the material.

Transition to Chaos in Random Neuronal Networks

Jonathan Kadmon and Haim Sompolinsky

Phys. Rev. X 5, 041030 (2015) - Published 19 November, 2015

Cortical neural circuits have been hypothesized to operate in a regime termed the “edge of chaos.” A new theoretical study puts this regime in a more biologically plausible perspective.

Emergence of Chaotic Scattering in Ultracold Er and Dy

T. Maier, H. Kadau, M. Schmitt, M. Wenzel, I. Ferrier-Barbut, T. Pfau, A. Frisch, S. Baier, K. Aikawa, L. Chomaz, M. J. Mark, F. Ferlaino, C. Makrides, E. Tiesinga, A. Petrov, and S. Kotochigova

Phys. Rev. X 5, 041029 (2015) - Published 19 November, 2015

Chaos is a fundamental aspect of many fields of nuclear and atomic physics. Scientists use collisions among magnetic rare-earth atoms to investigate quantum chaos.

Nonequilibrium Phase Transition in a Two-Dimensional Driven Open Quantum System

G. Dagvadorj, J. M. Fellows, S. Matyjaśkiewicz, F. M. Marchetti, I. Carusotto, and M. H. Szymańska

Phys. Rev. X 5, 041028 (2015) - Published 17 November, 2015

The transition between a superfluid and a normal fluid in two dimensions can be understood in terms of the proliferation of topological defects. Now, scientists theoretically analyze such phase transitions in the far-from-equilibrium context of a quantum fluid of exciton polaritons.

Widely Tunable Terahertz Phase Modulation with Gate-Controlled Graphene Metasurfaces

Ziqi Miao, Qiong Wu, Xin Li, Qiong He, Kun Ding, Zhenghua An, Yuanbo Zhang, and Lei Zhou

Phys. Rev. X 5, 041027 (2015) - Published 16 November, 2015

Modulating the phase of electromagnetic waves has many applications in photonic research. A new mechanism allows a thin graphene metasurface to reliably achieve an extremely large phase modulation in THz radiation.

Superregular Breathers in Optics and Hydrodynamics: Omnipresent Modulation Instability beyond Simple Periodicity

B. Kibler, A. Chabchoub, A. Gelash, N. Akhmediev, and V. E. Zakharov

Phys. Rev. X 5, 041026 (2015) - Published 13 November, 2015

Water, plasmas, and laser light can all exhibit instabilities. Experiments in two different areas of wave physics are used to investigate the creation and annihilation dynamics of superregular breather waves, which combine to form an instability.

Bekenstein-Hawking Entropy and Strange Metals

Subir Sachdev

Phys. Rev. X 5, 041025 (2015) - Published 13 November, 2015

Black hole horizons have been shown to have characteristic entropies and temperatures. A new investigation shows similarities between the entropy of a black hole and a metallic state of high-temperature superconductors.

Position-Squared Coupling in a Tunable Photonic Crystal Optomechanical Cavity

Taofiq K. Paraïso, Mahmoud Kalaee, Leyun Zang, Hannes Pfeifer, Florian Marquardt, and Oskar Painter

Phys. Rev. X 5, 041024 (2015) - Published 12 November, 2015

Coupling the frequency of an electromagnetic cavity to the square of mechanical displacement of the cavity structure has been proposed for realizing quantum nondemolition measurements. Such measurement systems are now one step closer with the realization of a tunable microscale photonic crystal cavity with coupling that is some 5 orders of magnitude larger than in conventional Fabry-Pérot resonators.

Origin of the Magnetoresistance in Oxide Tunnel Junctions Determined through Electric Polarization Control of the Interface

Hisashi Inoue, Adrian G. Swartz, Nicholas J. Harmon, Takashi Tachikawa, Yasuyuki Hikita, Michael E. Flatté, and Harold Y. Hwang

Phys. Rev. X 5, 041023 (2015) - Published 11 November, 2015

Spintronics devices often use the accumulation of spins, probed by magnetoresistance, to convey information, and now researchers identify the origin of junction magnetoresistance in artificially engineered oxide heterostructures.

Cavity-Induced Modifications of Molecular Structure in the Strong-Coupling Regime

Javier Galego, Francisco J. Garcia-Vidal, and Johannes Feist

Phys. Rev. X 5, 041022 (2015) - Published 9 November, 2015

Interactions between molecules and light modes can alter the chemical structures of molecules. By examining strong coupling from a microscopic perspective it is possible to predict the modifications that molecules will undergo.

Intrinsic Paramagnetic Meissner Effect Due to s-Wave Odd-Frequency Superconductivity

A. Di Bernardo, Z. Salman, X. L. Wang, M. Amado, M. Egilmez, M. G. Flokstra, A. Suter, S. L. Lee, J. H. Zhao, T. Prokscha, E. Morenzoni, M. G. Blamire, J. Linder, and J. W. A. Robinson

Phys. Rev. X 5, 041021 (2015) - Published 6 November, 2015

The Meissner effect, which explains the levitation of magnetic objects, involves the expulsion of external magnetic flux from a superconductor. Now, researchers show that the inverse effect can also occur in which external magnetic flux is amplified.

Reconfigurable Josephson Circulator/Directional Amplifier

K. M. Sliwa, M. Hatridge, A. Narla, S. Shankar, L. Frunzio, R. J. Schoelkopf, and M. H. Devoret

Phys. Rev. X 5, 041020 (2015) - Published 5 November, 2015

Superconducting qubit experiments cannot be conducted without nonreciprocal devices such as circulators and directional amplifiers. Researchers show that both of these kinds of devices can be realized using a single Josephson circuit.

Near-Complete Photon Spin Selectivity in a Metasurface of Anisotropic Plasmonic Antennas

Robin Ogier, Yurui Fang, Mikael Käll, and Mikael Svedendahl

Phys. Rev. X 5, 041019 (2015) - Published 4 November, 2015

Many of tomorrow’s photonic devices, including optical biosensors, may rely on light signals with highly particular polarization properties. A new experiment shows that an ultrathin layer of gold particles can selectively absorb or reflect a light beam depending on its polarization handedness.

Electron-Doped Sr2IrO4: An Analogue of Hole-Doped Cuprate Superconductors Demonstrated by Scanning Tunneling Microscopy

Y. J. Yan, M. Q. Ren, H. C. Xu, B. P. Xie, R. Tao, H. Y. Choi, N. Lee, Y. J. Choi, T. Zhang, and D. L. Feng

Phys. Rev. X 5, 041018 (2015) - Published 4 November, 2015

Superconducting cuprates are of great interest in condensed-matter physics, and now a new study shows that another transition-metal oxide, Sr2IrO4, may be analogous to cuprates in its high-temperature superconductivity.

Photon Temporal Modes: A Complete Framework for Quantum Information Science

B. Brecht, Dileep V. Reddy, C. Silberhorn, and M. G. Raymer

Phys. Rev. X 5, 041017 (2015) - Published 30 October, 2015

Because photons interact weakly with themselves and experience low decoherence, they are a promising avenue for quantum information science. Theorists show how the temporal modes of single-photon states can form an alphabet for communication across a quantum information network.

Dynamical-Decoupling-Based Quantum Sensing: Floquet Spectroscopy

J. E. Lang, R. B. Liu, and T. S. Monteiro

Phys. Rev. X 5, 041016 (2015) - Published 30 October, 2015

Previous studies have shown that single nuclear spins and nuclear spin pairs can be detected. Scientists analyze time-periodic sensing protocols using Floquet theory, a powerful new method for relating experimental features to the characteristics of the detected spin or small cluster of spins.

Generalized Multiphoton Quantum Interference

Max Tillmann, Si-Hui Tan, Sarah E. Stoeckl, Barry C. Sanders, Hubert de Guise, René Heilmann, Stefan Nolte, Alexander Szameit, and Philip Walther

Phys. Rev. X 5, 041015 (2015) - Published 27 October, 2015

Particle interference is a critical component of optical quantum computing and communication. Now, researchers examine multiphoton quantum interference both theoretically and experimentally by manipulating the distinguishability of photons.

Strongly Deterministic Population Dynamics in Closed Microbial Communities

Zak Frentz, Seppe Kuehn, and Stanislas Leibler

Phys. Rev. X 5, 041014 (2015) - Published 26 October, 2015

High-resolution tracking of the population abundances in a simple, closed microbial ecosystem shows that the intrinsic dynamics of the system are strongly deterministic.

Anomalous Symmetry Fractionalization and Surface Topological Order

Xie Chen, F. J. Burnell, Ashvin Vishwanath, and Lukasz Fidkowski

Phys. Rev. X 5, 041013 (2015) - Published 23 October, 2015

Exotic excitations known as anyons are found in fractional quantum Hall states. Now, a systematic method establishes that certain symmetric theories of anyons cannot be realized in two dimensions.

Predicting Unconventional High-Temperature Superconductors in Trigonal Bipyramidal Coordinations

Jiangping Hu, Congcong Le, and Xianxin Wu

Phys. Rev. X 5, 041012 (2015) - Published 23 October, 2015

High-temperature superconductivity—the property of zero electrical resistance at relatively high temperature—is manifested in very limited classes of materials. An examination of the unique relationship between electronic structures and lattice structural units of the two known classes of high-temperature superconductors helps to identify possible new classes of these materials.

Sign In to Your Journals Account

Filter

Recent Issues

Vol. 16, Iss. 3
July - September 2026
Vol. 16, Iss. 2
April - June 2026
Vol. 16, Iss. 1
January - March 2026
Vol. 15, Iss. 4
October - December 2025
Category
Article Type

Filter

Article Lookup

Enter a citation