Highlights

Angle-Multiplexed Metasurfaces: Encoding Independent Wavefronts in a Single Metasurface under Different Illumination Angles

Seyedeh Mahsa Kamali, Ehsan Arbabi, Amir Arbabi, Yu Horie, MohammadSadegh Faraji-Dana, and Andrei Faraon

Phys. Rev. X 7, 041056 (2017) - Published 6 December, 2017

Researchers have demonstrated a device that can project two distinct holographic images when illuminated at different angles.

Widely Tunable On-Chip Microwave Circulator for Superconducting Quantum Circuits

Benjamin J. Chapman, Eric I. Rosenthal, Joseph Kerckhoff, Bradley A. Moores, Leila R. Vale, J. A. B. Mates, Gene C. Hilton, Kevin Lalumière, Alexandre Blais, and K. W. Lehnert

Phys. Rev. X 7, 041043 (2017) - Published 22 November, 2017

A device that routes microwave signals could help researchers scale up quantum-computing architectures.

Search for Axionlike Dark Matter through Nuclear Spin Precession in Electric and Magnetic Fields

C. Abel et al.

Phys. Rev. X 7, 041034 (2017) - Published 14 November, 2017

An analysis of spin-precession data of atoms and neutrons sets some of the tightest limits to date on the strength of interactions between axions and gluons or nucleons.

Acoustic Traps and Lattices for Electrons in Semiconductors

M. J. A. Schuetz, J. Knörzer, G. Giedke, L. M. K. Vandersypen, M. D. Lukin, and J. I. Cirac

Phys. Rev. X 7, 041019 (2017) - Published 24 October, 2017

Electrons and quasiparticles in solids could be trapped and moved using surface acoustic waves.

Magnetic Resonance with Squeezed Microwaves

A. Bienfait, P. Campagne-Ibarcq, A. H. Kiilerich, X. Zhou, S. Probst, J. J. Pla, T. Schenkel, D. Vion, D. Esteve, J. J. L. Morton, K. Moelmer, and P. Bertet

Phys. Rev. X 7, 041011 (2017) - Published 17 October, 2017

Electron-spin-resonance measurements can achieve greater sensitivity using squeezed light as an input.

Light Microscopy at Maximal Precision

Matthew Bierbaum, Brian D. Leahy, Alexander A. Alemi, Itai Cohen, and James P. Sethna

Phys. Rev. X 7, 041007 (2017) - Published 13 October, 2017

A theoretical model of light spreading and scattering improves accuracy precision of position and size measurements made with an optical microscope by as much as 100 times.

Quantum Spin Lenses in Atomic Arrays

A. W. Glaetzle, K. Ender, D. S. Wild, S. Choi, H. Pichler, M. D. Lukin, and P. Zoller

Phys. Rev. X 7, 031049 (2017) - Published 20 September, 2017

In quantum computing, atomic ensembles can efficiently map “flying” photonic qubits onto stationary qubits. These absorbed photons, however, end up encoded in delocalized states that preclude local processing. A new concept called a “quantum spin lens” could focus delocalized excitations onto a single atom, which can then be manipulated using standard quantum computing tools.

Squeezed Thermal Reservoirs as a Resource for a Nanomechanical Engine beyond the Carnot Limit

Jan Klaers, Stefan Faelt, Atac Imamoglu, and Emre Togan

Phys. Rev. X 7, 031044 (2017) - Published 13 September, 2017

A tiny engine can surpass the Carnot limit of efficiency when researchers engineer the thermal properties of the environment.

Topological Sound and Flocking on Curved Surfaces

Suraj Shankar, Mark J. Bowick, and M. Cristina Marchetti

Phys. Rev. X 7, 031039 (2017) - Published 7 September, 2017

A flocking model that describes birds and cells exhibits topological features when the moving entities are confined to a curved surface.

Extreme-Ultraviolet Vortices from a Free-Electron Laser

Primož Rebernik Ribič, Benedikt Rösner, David Gauthier, Enrico Allaria, Florian Döring, Laura Foglia, Luca Giannessi, Nicola Mahne, Michele Manfredda, Claudio Masciovecchio, Riccardo Mincigrucci, Najmeh Mirian, Emiliano Principi, Eléonore Roussel, Alberto Simoncig, Simone Spampinati, Christian David, and Giovanni De Ninno

Phys. Rev. X 7, 031036 (2017) - Published 28 August, 2017

Researchers have used a free-electron laser to produce vortex radiation at extreme-ultraviolet wavelengths.

Autonomous Quantum Clocks: Does Thermodynamics Limit Our Ability to Measure Time?

Paul Erker, Mark T. Mitchison, Ralph Silva, Mischa P. Woods, Nicolas Brunner, and Marcus Huber

Phys. Rev. X 7, 031022 (2017) - Published 2 August, 2017

A simple model of an autonomous quantum clock yields a quantitative connection between the clock’s thermodynamic cost and its accuracy and resolution.

Quantum Common Causes and Quantum Causal Models

John-Mark A. Allen, Jonathan Barrett, Dominic C. Horsman, Ciarán M. Lee, and Robert W. Spekkens

Phys. Rev. X 7, 031021 (2017) - Published 31 July, 2017

A new model extends the definition of causality to quantum-mechanical systems.

Measuring Out-of-Time-Order Correlators on a Nuclear Magnetic Resonance Quantum Simulator

Jun Li, Ruihua Fan, Hengyan Wang, Bingtian Ye, Bei Zeng, Hui Zhai, Xinhua Peng, and Jiangfeng Du

Phys. Rev. X 7, 031011 (2017) - Published 19 July, 2017

Two experimental groups have taken a step towards observing the “scrambling” of information that occurs as a many-body quantum system thermalizes.

Spatial Evolution of Human Dialects

James Burridge

Phys. Rev. X 7, 031008 (2017) - Published 17 July, 2017

A new model of language evolution assumes that changes in the spatial boundaries between dialects are controlled by a surface tension effect.

Fingerprinting Molecular Relaxation in Deformed Polymers

Zhe Wang, Christopher N. Lam, Wei-Ren Chen, Weiyu Wang, Jianning Liu, Yun Liu, Lionel Porcar, Christopher B. Stanley, Zhichen Zhao, Kunlun Hong, and Yangyang Wang

Phys. Rev. X 7, 031003 (2017) - Published 10 July, 2017

Results from a new method of analyzing neutron-scattering data from polymer samples under deformation may challenge the prevailing “tube model” of polymer motion.

Detection and Implications of Laser-Induced Raman Scattering at Astronomical Observatories

Frédéric P. A. Vogt, Domenico Bonaccini Calia, Wolfgang Hackenberg, Cyrielle Opitom, Mauro Comin, Linda Schmidtobreik, Jonathan Smoker, Israel Blanchard, Marcela Espinoza Contreras, Ivan Aranda, Julien Milli, Yara L. Jaffe, Fernando Selman, Johann Kolb, Pascale Hibon, Harald Kuntschner, and Pierre-Yves Madec

Phys. Rev. X 7, 021044 (2017) - Published 22 June, 2017

Raman scattering could contaminate astronomical observations that use “laser guide stars” to correct for the effect of atmospheric turbulence.

Single Strontium Rydberg Ion Confined in a Paul Trap

Gerard Higgins, Weibin Li, Fabian Pokorny, Chi Zhang, Florian Kress, Christine Maier, Johannes Haag, Quentin Bodart, Igor Lesanovsky, and Markus Hennrich

Phys. Rev. X 7, 021038 (2017) - Published 7 June, 2017

A trapped ion excited to a hydrogen-like Rydberg state shows promise for qubit applications.

Quantum Correlations between Single Telecom Photons and a Multimode On-Demand Solid-State Quantum Memory

Alessandro Seri, Andreas Lenhard, Daniel Rieländer, Mustafa Gündoğan, Patrick M. Ledingham, Margherita Mazzera, and Hugues de Riedmatten

Phys. Rev. X 7, 021028 (2017) - Published 24 May, 2017

Crystals with rare-earth ions could lead to quantum repeaters that enable secure quantum communications over long distances.

Intracity Quantum Communication via Thermal Microwave Networks

Ze-Liang Xiang, Mengzhen Zhang, Liang Jiang, and Peter Rabl

Phys. Rev. X 7, 011035 (2017) - Published 27 March, 2017

A new quantum communication protocol is robust in the presence of thermal noise, paving the way for all-microwave quantum networks.

Strong Coupling Cavity QED with Gate-Defined Double Quantum Dots Enabled by a High Impedance Resonator

A. Stockklauser, P. Scarlino, J. V. Koski, S. Gasparinetti, C. K. Andersen, C. Reichl, W. Wegscheider, T. Ihn, K. Ensslin, and A. Wallraff

Phys. Rev. X 7, 011030 (2017) - Published 9 March, 2017

A system combining a quantum dot and a superconducting cavity achieves the strongest light-matter coupling for this type of hybrid system.

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