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Shock Waves and Commutation Speed of Memristors

Shao Tang, Federico Tesler, Fernando Gomez Marlasca, Pablo Levy, V. Dobrosavljević, and Marcelo Rozenberg

Phys. Rev. X 6, 011028 (2016) - Published 15 March, 2016

An electric field can launch shock waves that create a fast and nonvolatile resistivity change in transition-metal oxides.

Coherent Polariton Laser

Seonghoon Kim, Bo Zhang, Zhaorong Wang, Julian Fischer, Sebastian Brodbeck, Martin Kamp, Christian Schneider, Sven Höfling, and Hui Deng

Phys. Rev. X 6, 011026 (2016) - Published 11 March, 2016

The emission from a polariton laser shows the coherence that is common to conventional lasers, a step toward using them as high-efficiency alternative light sources.

Comparing and Combining Measurement-Based and Driven-Dissipative Entanglement Stabilization

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

Phys. Rev. X 6, 011022 (2016) - Published 3 March, 2016

Error correction by feedback is crucial in quantum computation, and an experiment now shows that two such methods can be integrated in a nested feedback protocol to obtain the best properties of both.

Charge-Induced Fluctuation Forces in Graphitic Nanostructures

D. Drosdoff, Igor V. Bondarev, Allan Widom, Rudolf Podgornik, and Lilia M. Woods

Phys. Rev. X 6, 011004 (2016) - Published 21 January, 2016

Casimir and van der Waals forces, induced by dipolar fluctuations, are commonplace, and now a new study shows that fluctuations induced by monopolar charges can create similar or stronger forces in solid-state devices.

Controlled Population of Floquet-Bloch States via Coupling to Bose and Fermi Baths

Karthik I. Seetharam, Charles-Edouard Bardyn, Netanel H. Lindner, Mark S. Rudner, and Gil Refael

Phys. Rev. X 5, 041050 (2015) - Published 28 December, 2015

Novel topological phenomena are believed to arise in systems driven out of equilibrium. Now, researchers make a key step toward realizing such phenomena and establish the requirements for obtaining Floquet insulator steady states.

Spin-Wave Diode

Jin Lan (兰金), Weichao Yu (余伟超), Ruqian Wu, and Jiang Xiao (萧江)

Phys. Rev. X 5, 041049 (2015) - Published 28 December, 2015

Conventional electric circuits use electrons as information carriers, a process that dissipates vast quantities of waste heat. A new design for a spin-wave diode, which produces no Joule heating, is presented.

Deconfined Quantum Criticality, Scaling Violations, and Classical Loop Models

Adam Nahum, J. T. Chalker, P. Serna, M. Ortuño, and A. M. Somoza

Phys. Rev. X 5, 041048 (2015) - Published 23 December, 2015

Two-dimensional Mott insulators allow for a remarkable “deconfined” quantum phase transition. A new theoretical and computational study shows that this controversial critical point may be even stranger than previously thought.

Criterion for Many-Body Localization-Delocalization Phase Transition

Maksym Serbyn, Z. Papić, and Dmitry A. Abanin

Phys. Rev. X 5, 041047 (2015) - Published 23 December, 2015

Many-body localization leads to the breakdown of ergodicity in quantum systems and defies description in terms of equilibrium statistical mechanics. Researchers introduce an order parameter that makes it possible to probe how ergodicity and thermalization break down due to many-body localization.

Current at a Distance and Resonant Transparency in Weyl Semimetals

Yuval Baum, Erez Berg, S. A. Parameswaran, and Ady Stern

Phys. Rev. X 5, 041046 (2015) - Published 21 December, 2015

Topological effects persist in Weyl semimetals, and now two experiments show how Fermi arcs lead to nonlocal currents in Weyl semimetal samples already at the semiclassical level.

Tunable Broadband Transparency of Macroscopic Quantum Superconducting Metamaterials

Daimeng Zhang, Melissa Trepanier, Oleg Mukhanov, and Steven M. Anlage

Phys. Rev. X 5, 041045 (2015) - Published 18 December, 2015

A new metamaterial acts like a cloak over a wide range of microwave frequencies.

Exploring Interacting Quantum Many-Body Systems by Experimentally Creating Continuous Matrix Product States in Superconducting Circuits

C. Eichler, J. Mlynek, J. Butscher, P. Kurpiers, K. Hammerer, T. J. Osborne, and A. Wallraff

Phys. Rev. X 5, 041044 (2015) - Published 16 December, 2015

Correlated quantum many-body systems appear in physics, chemistry, and biology. Researchers simulate and explore such systems using an experimentally controlled superconducting quantum device.

Solutions of the Two-Dimensional Hubbard Model: Benchmarks and Results from a Wide Range of Numerical Algorithms

J. P. F. LeBlanc, Andrey E. Antipov, Federico Becca, Ireneusz W. Bulik, Garnet Kin-Lic Chan, Chia-Min Chung, Youjin Deng, Michel Ferrero, Thomas M. Henderson, Carlos A. Jiménez-Hoyos, E. Kozik, Xuan-Wen Liu, Andrew J. Millis, N. V. Prokof’ev, Mingpu Qin, Gustavo E. Scuseria, Hao Shi, B. V. Svistunov, Luca F. Tocchio, I. S. Tupitsyn, Steven R. White, Shiwei Zhang, Bo-Xiao Zheng, Zhenyue Zhu, and Emanuel Gull (Simons Collaboration on the Many-Electron Problem)

Phys. Rev. X 5, 041041 (2015) - Published 14 December, 2015

Modeling systems with a large number of interacting electrons is critical to understanding the physical properties of materials and molecules of interest to chemists and physicists. Researchers model a system using a range of numerical techniques and compare results in order to find sources of uncertainty and establish benchmarks.

Parafermions in a Kagome Lattice of Qubits for Topological Quantum Computation

Adrian Hutter, James R. Wootton, and Daniel Loss

Phys. Rev. X 5, 041040 (2015) - Published 14 December, 2015

Error correction is critical in topological quantum computation, but it restricts the quantum gates that can be easily performed. A proposed model shows how to correct errors and perform complex gates by braiding in realistic qubit systems that support non-Abelian parafermions.

Majorana Fermion Surface Code for Universal Quantum Computation

Sagar Vijay, Timothy H. Hsieh, and Liang Fu

Phys. Rev. X 5, 041038 (2015) - Published 10 December, 2015

Fault-tolerant quantum computation has been a long-standing goal in many fields of physics. A new model shows how logical qubits can be encoded using anyon excitations from Majorana fermions arranged on a two-dimensional lattice.

Phase Diagram and Quantum Order by Disorder in the Kitaev K1−K2 Honeycomb Magnet

Ioannis Rousochatzakis, Johannes Reuther, Ronny Thomale, Stephan Rachel, and N. B. Perkins

Phys. Rev. X 5, 041035 (2015) - Published 1 December, 2015

Theorists studying unexpected quantum states of matter show that the second-neighbor Kitaev can explain materials that are in close proximity to a spin-liquid state.

Towards Gauging Time-Reversal Symmetry: A Tensor Network Approach

Xie Chen and Ashvin Vishwanath

Phys. Rev. X 5, 041034 (2015) - Published 30 November, 2015

Time-reversal symmetry is fundamental to condensed matter physics, and now researchers show how time reversal can be applied locally, using a tensor network representation, and how time-reversal twists can be used to detect topological order.

Discontinuous Shear Modulus Determines the Glass Transition Temperature

Christian L. Klix, Georg Maret, and Peter Keim

Phys. Rev. X 5, 041033 (2015) - Published 25 November, 2015

Glasses remain a poorly understood material despite their widespread use. A study of the macroscopic elastic properties of a colloidal-glass former during vitrification offers new insights.

Imaginary-Time Matrix Product State Impurity Solver for Dynamical Mean-Field Theory

F. Alexander Wolf, Ara Go, Ian P. McCulloch, Andrew J. Millis, and Ulrich Schollwöck

Phys. Rev. X 5, 041032 (2015) - Published 24 November, 2015

Researchers use ideas generated in the study of quantum entanglement to guide the construction of new impurity solvers, enabling analysis of substantially more complex and realistic problems within the cluster dynamical mean-field-theory framework.

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.

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.

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