Highlights

Robust Quantum-Network Memory Using Decoherence-Protected Subspaces of Nuclear Spins

Andreas Reiserer, Norbert Kalb, Machiel S. Blok, Koen J. M. van Bemmelen, Tim H. Taminiau, Ronald Hanson, Daniel J. Twitchen, and Matthew Markham

Phys. Rev. X 6, 021040 (2016) - Published 22 June, 2016

Entanglement purification, a vital enabler for practical quantum networks, has been shown to be feasible with secluded nuclear memories in diamond.

Sufficient Conditions for Efficient Classical Simulation of Quantum Optics

Saleh Rahimi-Keshari, Timothy C. Ralph, and Carlton M. Caves

Phys. Rev. X 6, 021039 (2016) - Published 20 June, 2016

Richard Feynman suggested that it takes a quantum computer to simulate large quantum systems, but a new study shows that a classical computer can work when the system has loss and noise.

Intrinsic Turbulence Stabilization in a Stellarator

P. Xanthopoulos, G. G. Plunk, A. Zocco, and P. Helander

Phys. Rev. X 6, 021033 (2016) - Published 7 June, 2016

New simulations of an alternate fusion reactor design reveal that it can be stable against turbulent fluctuations.

Spontaneous Crystallization of Light and Ultracold Atoms

S. Ostermann, F. Piazza, and H. Ritsch

Phys. Rev. X 6, 021026 (2016) - Published 24 May, 2016

A predicted type of atom-light crystal could host phonon-like excitations, allowing for new ways to simulate the physics of solids.

Synchronization of Distant Optical Clocks at the Femtosecond Level

Jean-Daniel Deschênes, Laura C. Sinclair, Fabrizio R. Giorgetta, William C. Swann, Esther Baumann, Hugo Bergeron, Michael Cermak, Ian Coddington, and Nathan R. Newbury

Phys. Rev. X 6, 021016 (2016) - Published 11 May, 2016

Free-space laser links have been used to synchronize optical clocks with an unprecedented uncertainty of femtoseconds.

Microphotonic Forces from Superfluid Flow

D. L. McAuslan, G. I. Harris, C. Baker, Y. Sachkou, X. He, E. Sheridan, and W. P. Bowen

Phys. Rev. X 6, 021012 (2016) - Published 29 April, 2016

Shining a laser onto a microscopic object coated with a superfluid film induces flows that can generate a controlled force.

Similarity of Symbol Frequency Distributions with Heavy Tails

Martin Gerlach, Francesc Font-Clos, and Eduardo G. Altmann

Phys. Rev. X 6, 021009 (2016) - Published 15 April, 2016

A mathematical technique for comparing large symbol sets suggests that less frequently used words are mainly responsible for the evolution of the English language over the past two centuries.

Ultralow-Noise SiN Trampoline Resonators for Sensing and Optomechanics

Christoph Reinhardt, Tina Müller, Alexandre Bourassa, and Jack C. Sankey

Phys. Rev. X 6, 021001 (2016) - Published 1 April, 2016

Accurately measuring extremely small forces is important in many fields of physics, materials science, and engineering. Researchers demonstrate tiny “trampoline’’ mechanical sensors that are exquisitely sensitive to attonewton forces at room temperature.

Gravitational-Wave Cosmology across 29 Decades in Frequency

Paul D. Lasky et al.

Phys. Rev. X 6, 011035 (2016) - Published 31 March, 2016

An analysis of data spanning 29 orders of magnitude in gravitational-wave frequency provides insights into the physics of the early cosmos.

Coupling an Ensemble of Electrons on Superfluid Helium to a Superconducting Circuit

Ge Yang, A. Fragner, G. Koolstra, L. Ocola, D. A. Czaplewski, R. J. Schoelkopf, and D. I. Schuster

Phys. Rev. X 6, 011031 (2016) - Published 21 March, 2016

A new quantum device uses a superconducting circuit to monitor a 2D gas of electrons floating on the surface of superfluid helium.

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.

Stabilization of Highly Polar BiFeO3-like Structure: A New Interface Design Route for Enhanced Ferroelectricity in Artificial Perovskite Superlattices

Hongwei Wang, Jianguo Wen, Dean J. Miller, Qibin Zhou, Mohan Chen, Ho Nyung Lee, Karin M. Rabe, and Xifan Wu

Phys. Rev. X 6, 011027 (2016) - Published 14 March, 2016

Simulations show that the interface between two perovskite oxides can be a much stronger ferroelectric than either oxide on its own.

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.

Cold-Strontium Laser in the Superradiant Crossover Regime

Matthew A. Norcia and James K. Thompson

Phys. Rev. X 6, 011025 (2016) - Published 9 March, 2016

The frequency of a laser based on trapped ultracold atoms can be made insensitive to fluctuations in the laser cavity’s length.

Engineering Sensorial Delay to Control Phototaxis and Emergent Collective Behaviors

Mite Mijalkov, Austin McDaniel, Jan Wehr, and Giovanni Volpe

Phys. Rev. X 6, 011008 (2016) - Published 29 January, 2016

A robot group clusters together or disperses based on each robot’s reaction time for sensing light, a finding useful for search-and-rescue missions.

Majorana Zero Modes in Graphene

P. San-Jose, J. L. Lado, R. Aguado, F. Guinea, and J. Fernández-Rossier

Phys. Rev. X 5, 041042 (2015) - Published 15 December, 2015

Majorana particles, which are their own antiparticles and whose recent detection in solid-state systems remains controversial, are expected to play an important role in future quantum computing. Now, scientists predict that graphene may host Majorana particles.

Quantum Nondemolition Measurement of a Nonclassical State of a Massive Object

F. Lecocq, J. B. Clark, R. W. Simmonds, J. Aumentado, and J. D. Teufel

Phys. Rev. X 5, 041037 (2015) - Published 7 December, 2015

The act of a quantum measurement reduces the uncertainty in the motion of a vibrating membrane below the fundamental quantum limit.

Nanophotonic Optical Isolator Controlled by the Internal State of Cold Atoms

Clément Sayrin, Christian Junge, Rudolf Mitsch, Bernhard Albrecht, Danny O’Shea, Philipp Schneeweiss, Jürgen Volz, and Arno Rauschenbeutel

Phys. Rev. X 5, 041036 (2015) - Published 4 December, 2015

A proof-of-principle experiment allows single photons to travel in only one direction through an optical fiber.

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.

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.

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