Recent Articles

Microscopic Characterization of Scalable Coherent Rydberg Superatoms

Johannes Zeiher, Peter Schauß, Sebastian Hild, Tommaso Macrì, Immanuel Bloch, and Christian Gross

Phys. Rev. X 5, 031015 (2015) - Published 12 August, 2015

Light-matter coupling is an ongoing investigation in modern physics and is expected to play a role in quantum information applications. Using single-atom-controlled samples of ultracold rubidium-87 coupled to Rydberg states, scientists show that many-body systems of various sizes can be coherently manipulated as a single “superatom.”

Quantitative Understanding of Probabilistic Behavior of Living Cells Operated by Vibrant Intracellular Networks

Yu Rim Lim, Ji-Hyun Kim, Seong Jun Park, Gil-Suk Yang, Sanggeun Song, Suk-Kyu Chang, Nam Ki Lee, and Jaeyoung Sung

Phys. Rev. X 5, 031014 (2015) - Published 10 August, 2015

Chemical fluctuations within cells affect biological functioning. An accurate mathematical theory now permits a quantitative understanding of intracellular chemical fluctuations and their impact on the probabilistic behaviors of cells.

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.

Effect of the Laser Wave Front in a Laser-Plasma Accelerator

B. Beaurepaire, A. Vernier, M. Bocoum, F. Böhle, A. Jullien, J-P. Rousseau, T. Lefrou, D. Douillet, G. Iaquaniello, R. Lopez-Martens, A. Lifschitz, and J. Faure

Phys. Rev. X 5, 031012 (2015) - Published 31 July, 2015

Accelerating electrons to relativistic energies has applications in time-resolved electron diffraction. Experiments and simulations show that inhomogeneities in a laser’s electric field affect the quality of the accelerated electron beam.

Topological Phases of Sound and Light

V. Peano, C. Brendel, M. Schmidt, and F. Marquardt

Phys. Rev. X 5, 031011 (2015) - Published 28 July, 2015

In everyday life, if sound propagates from one location to another, it can propagate backwards just as easily. However, theorists show that it is possible to harness the radiation pressure interaction between light and matter to produce unidirectional sound propagation.

Improved Quantum Magnetometry beyond the Standard Quantum Limit

J. B. Brask, R. Chaves, and J. Kołodyński

Phys. Rev. X 5, 031010 (2015) - Published 22 July, 2015

Quantum effects are very sensitive to noise, which is a fundamental limit in all experiments. Researchers show that they nevertheless enable precise measurements of magnetic fields in a noisy environment.

Scalable Integration of Long-Lived Quantum Memories into a Photonic Circuit

Sara L. Mouradian, Tim Schröder, Carl B. Poitras, Luozhou Li, Jordan Goldstein, Edward H. Chen, Michael Walsh, Jaime Cardenas, Matthew L. Markham, Daniel J. Twitchen, Michal Lipson, and Dirk Englund

Phys. Rev. X 5, 031009 (2015) - Published 21 July, 2015

Quantum networks built out of distinct quantum bits (qubits) connected via photons may enable quantum computation and long-distance communication. The high yield integration of high-quality solid-state qubits into an on-chip photonic circuit could provide a stable and scalable architecture to build such a network.

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.

Broadband Reflectionless Metasheets: Frequency-Selective Transmission and Perfect Absorption

V. S. Asadchy, I. A. Faniayeu, Y. Ra’di, S. A. Khakhomov, I. V. Semchenko, and S. A. Tretyakov

Phys. Rev. X 5, 031005 (2015) - Published 14 July, 2015

An array of helical elements absorbs radiation of a certain frequency while casting no shadow in light over a range of other frequencies.

Observation of Localized Multi-Spatial-Mode Quadrature Squeezing

C. S. Embrey, M. T. Turnbull, P. G. Petrov, and V. Boyer

Phys. Rev. X 5, 031004 (2015) - Published 9 July, 2015

Optical imaging resolution is ultimately limited by light’s quantum noise, which is manifested by small quantum fluctuations in its electric field. A new technique allows these correlations to be controlled simultaneously at all points in space and has the potential to yield smoother images.

Geometry and Topology of Turbulence in Active Nematics

Luca Giomi

Phys. Rev. X 5, 031003 (2015) - Published 8 July, 2015

In active liquid crystals, turbulence can occur in the absence of external forces due to internal active stresses. Researchers show that the geometrical structure of such a turbulent flow is strongly correlated with the presence of topological defects in the liquid crystal.

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.

Strong-Field Physics with Mid-IR Fields

Benjamin Wolter, Michael G. Pullen, Matthias Baudisch, Michele Sclafani, Michaël Hemmer, Arne Senftleben, Claus Dieter Schröter, Joachim Ullrich, Robert Moshammer, and Jens Biegert

Phys. Rev. X 5, 021034 (2015) - Published 26 June, 2015

New sources and detectors allow atomic and molecular structure to be studied at mid-infrared wavelengths, where interpreting experiments is more straightforward.

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.

Sign-Problem-Free Quantum Monte Carlo Study on Thermodynamic Properties and Magnetic Phase Transitions in Orbital-Active Itinerant Ferromagnets

Shenglong Xu, Yi Li, and Congjun Wu

Phys. Rev. X 5, 021032 (2015) - Published 23 June, 2015

Ferromagnetism of delocalized fermions is a fundamental aspect of condensed-matter physics but is difficult to describe using typical perturbative methods. Using nonperturbative simulations, scientists accurately determine the ferromagnetic transition temperature and other thermodynamic properties of a ferromagnetic metal.

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