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Experimental Discovery of Weyl Semimetal TaAs

B. Q. Lv, H. M. Weng, B. B. Fu, X. P. Wang, H. Miao, J. Ma, P. Richard, X. C. Huang, L. X. Zhao, G. F. Chen, Z. Fang, X. Dai, T. Qian, and H. Ding

Phys. Rev. X 5, 031013 (2015) - Published 31 July, 2015

Weyl fermions possess exotic properties and can act like magnetic monopoles. Researchers show that TaAs is a Weyl semimetal, demonstrating for the first time that Weyl semimetals can be identified experimentally.

Spin- and Pair-Density-Wave Glasses

David F. Mross and T. Senthil

Phys. Rev. X 5, 031008 (2015) - Published 20 July, 2015

Researchers show that electronic systems with a common type of magnetic order form a new glassy state of matter due to imperfections. In this phase, the spins of the electrons are randomly aligned or anti-aligned with a spontaneously chosen axis.

Ultrafast Polariton-Phonon Dynamics of Strongly Coupled Quantum Dot-Nanocavity Systems

Kai Müller, Kevin A. Fischer, Armand Rundquist, Constantin Dory, Konstantinos G. Lagoudakis, Tomas Sarmiento, Yousif A. Kelaita, Victoria Borish, and Jelena Vučković

Phys. Rev. X 5, 031006 (2015) - Published 16 July, 2015

With the assistance of lattice vibrations, quantum dots perform as single-photon emitters.

Fidelity Susceptibility Made Simple: A Unified Quantum Monte Carlo Approach

Lei Wang, Ye-Hua Liu, Jakub Imriška, Ping Nang Ma, and Matthias Troyer

Phys. Rev. X 5, 031007 (2015) - Published 15 July, 2015

Quantum phase transitions, which are driven by a parameter in the Hamiltonian, can be thought as certain classical phase transitions in the modern formulation of quantum Monte Carlo methods. A new generic tool captures quantum phase transitions in a simple and efficient manner.

Spontaneous Spin Bifurcations and Ferromagnetic Phase Transitions in a Spinor Exciton-Polariton Condensate

H. Ohadi, A. Dreismann, Y. G. Rubo, F. Pinsker, Y. del Valle-Inclan Redondo, S. I. Tsintzos, Z. Hatzopoulos, P. G. Savvidis, and J. J. Baumberg

Phys. Rev. X 5, 031002 (2015) - Published 8 July, 2015

Polariton condensates can store bits of information and are characterized by long lifetimes. Researchers experimentally show how a polariton condensate acts as an optical spin memory that can be rapidly flipped.

Topological Polaritons

Torsten Karzig, Charles-Edouard Bardyn, Netanel H. Lindner, and Gil Refael

Phys. Rev. X 5, 031001 (2015) - Published 1 July, 2015

Quasiparticles dubbed topological polaritons make their debut in the theoretical world.

Beyond Strong Coupling in a Multimode Cavity

Neereja M. Sundaresan, Yanbing Liu, Darius Sadri, László J. Szőcs, Devin L. Underwood, Moein Malekakhlagh, Hakan E. Türeci, and Andrew A. Houck

Phys. Rev. X 5, 021035 (2015) - Published 29 June, 2015

The interaction of light and matter is fundamental in physics. New results show that quantum coherence can arise in a cavity containing multiple modes of light and an artificial atom.

Anharmonic Nuclear Motion and the Relative Stability of Hexagonal and Cubic ice

Edgar A. Engel, Bartomeu Monserrat, and Richard J. Needs

Phys. Rev. X 5, 021033 (2015) - Published 24 June, 2015

Water is an abundant resource on Earth and at low temperatures it occurs in hexagonal and cubic forms that differ only in molecular arrangements. Researchers use quantum-mechanical simulations to explain why hexagonal ice has a lower overall free energy than the cubic form and thus why snowflakes are hexagonal.

Time- and Site-Resolved Dynamics in a Topological Circuit

Jia Ningyuan, Clai Owens, Ariel Sommer, David Schuster, and Jonathan Simon

Phys. Rev. X 5, 021031 (2015) - Published 22 June, 2015

The surface states of topological insulators are protected from backscattering, making them a promising resource for computing and materials science. This topological protection is now demonstrated in a radio-frequency circuit.

Vortex-Line Condensation in Three Dimensions: A Physical Mechanism for Bosonic Topological Insulators

Peng Ye and Zheng-Cheng Gu

Phys. Rev. X 5, 021029 (2015) - Published 19 June, 2015

Topological insulators consist of electrons that are either free or weakly interacting, which makes such systems computationally tractable. A new study describes topological insulators of bosons—a strongly correlated problem—and shows that their low-energy physics is captured by an exotic theory.

Digital Quantum Simulation of Spin Models with Circuit Quantum Electrodynamics

Y. Salathé, M. Mondal, M. Oppliger, J. Heinsoo, P. Kurpiers, A. Potočnik, A. Mezzacapo, U. Las Heras, L. Lamata, E. Solano, S. Filipp, and A. Wallraff

Phys. Rev. X 5, 021027 (2015) - Published 17 June, 2015

Quantum simulations are expected to vastly outperform classical simulations when modeling the dynamics of interacting spin systems. A digital quantum simulation shows that spin dynamics can be studied and predicted, laying the groundwork for applications in quantum magnetism.

Realization of a Quantum Integer-Spin Chain with Controllable Interactions

C. Senko, P. Richerme, J. Smith, A. Lee, I. Cohen, A. Retzker, and C. Monroe

Phys. Rev. X 5, 021026 (2015) - Published 17 June, 2015

Ions with multiple quantum states are useful test beds for quantum magnetism and memory. Researchers use trapped 171Yb ions to control interactions among ions with three quantum states.

Nonreciprocal Photon Transmission and Amplification via Reservoir Engineering

A. Metelmann and A. A. Clerk

Phys. Rev. X 5, 021025 (2015) - Published 15 June, 2015

Nonreciprocal photonic systems allow for the unidirectional transmission and amplification of photons, which enables a host of applications. A new and general approach for realizing nonreciprocal interactions shows how they can be used to construct quantum-limited amplifiers and isolators.

Angle Dependence of the Orbital Magnetoresistance in Bismuth

Aurélie Collaudin, Benoît Fauqué, Yuki Fuseya, Woun Kang, and Kamran Behnia

Phys. Rev. X 5, 021022 (2015) - Published 9 June, 2015

Bismuth is known for its extremely mobile electrons whose capacity to conduct electricity is drastically diminished in the presence of magnetic fields. A new study shows how the orbital magnetoresistance changes as a function of both temperature and magnetic field strength.

Colossal Proximity Effect in a Superconducting Triplet Spin Valve Based on the Half-Metallic Ferromagnet CrO2

A. Singh, S. Voltan, K. Lahabi, and J. Aarts

Phys. Rev. X 5, 021019 (2015) - Published 26 May, 2015

Combining the qualities of superconductors and ferromagnets allows for the creation of new superconducting electronics. Cooper pairs in superconductors—which do not possess spin—can be altered to have spin using a special ferromagnet.

Unified Topological Response Theory For Gapped and Gapless Free Fermions

Daniel Bulmash, Pavan Hosur, Shou-Cheng Zhang, and Xiao-Liang Qi

Phys. Rev. X 5, 021018 (2015) - Published 26 May, 2015

A general framework already exists to describe how insulators respond to electromagnetic fields. Now, a new universal framework describes the response of both insulators and metals.

Magnetic End States in a Strongly Interacting One-Dimensional Topological Kondo Insulator

Alejandro M. Lobos, Ariel O. Dobry, and Victor Galitski

Phys. Rev. X 5, 021017 (2015) - Published 22 May, 2015

Strongly interacting topological phases constitute a recent field of condensed-matter physics. An investigation of a model of a topological insulator with exotic magnetic edge states helps explain how these states emerge.

Design of Semiconducting Tetrahedral Mn1−xZnxO Alloys and Their Application to Solar Water Splitting

Haowei Peng, Paul F. Ndione, David S. Ginley, Andriy Zakutayev, and Stephan Lany

Phys. Rev. X 5, 021016 (2015) - Published 18 May, 2015

Although transition-metal oxides usually lack the combination of suitable band gaps and carrier transport properties desired for solar energy applications, such semiconducting properties can be realized in metastable MnO-ZnO alloys.

Defect Formation beyond Kibble-Zurek Mechanism and Holography

Paul M. Chesler, Antonio M. García-García, and Hong Liu

Phys. Rev. X 5, 021015 (2015) - Published 14 May, 2015

Topological defects can occur during the transition from disorder to order. Researchers quantitatively predict the formation rate of defects using scaling ideas, linear response, and insights from gravity.

Erratum: Phase Diagram of the ν=5/2 Fractional Quantum Hall Effect: Effects of Landau-Level Mixing and Nonzero Width [Phys. Rev. X 5, 021004 (2015)]

Kiryl Pakrouski, Michael R. Peterson, Thierry Jolicoeur, Vito W. Scarola, Chetan Nayak, and Matthias Troyer

Phys. Rev. X 5, 029901 (2015) - Published 13 May, 2015

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