Recent Articles

Breakdown of the Arrhenius Law in Describing Vacancy Formation Energies: The Importance of Local Anharmonicity Revealed by Ab initio Thermodynamics

A. Glensk, B. Grabowski, T. Hickel, and J. Neugebauer

Phys. Rev. X 4, 011018 (2014) - Published 10 February, 2014

Point defects can significantly alter the behavior of solid-state materials, but a theoretically and experimentally consistent understanding of their formation energy has been lacking so far. Taking into account anharmonic lattice vibrations, a new state-of-the-art theoretical effort makes a very significant advance toward filling that gap and demonstrates a critical need to revise the official international point-defect database.

Editorial: A Timely Contribution to a Half-Century-Old Topic

Phys. Rev. X 4, 010001 (2014) - Published 10 February, 2014

The editors and Göran Grimvall from Royal Institute of Technology (KTH) of Sweden explain why the just-published paper by Glensk et al. [Phys. Rev. X 4, 011018 (2014)] deserves broad dissemination and special recognition.

Subdiffraction-Limited Quantum Imaging within a Living Cell

Michael A. Taylor, Jiri Janousek, Vincent Daria, Joachim Knittel, Boris Hage, Hans-A. Bachor, and Warwick P. Bowen

Phys. Rev. X 4, 011017 (2014) - Published 4 February, 2014

Quantum effects may help devise new imaging schemes that can overcome classical constraints posed by noise and diffraction. By using squeezed states of light in photonic force microscopy (PFM), scientists have demonstrated a 14% quantum enhancement of PFM’s spatial resolution, imaging details of living yeast cells with a resolution of 10 nm.

Publisher’s Note: Security of Device-Independent Quantum Key Distribution in the Bounded-Quantum-Storage Model [Phys. Rev. X 3, 031007 (2013)]

S. Pironio, Ll. Masanes, A. Leverrier, and A. Acín

Phys. Rev. X 4, 019901 (2014) - Published 31 January, 2014

Quantum Enigma Machines and the Locking Capacity of a Quantum Channel

Saikat Guha, Patrick Hayden, Hari Krovi, Seth Lloyd, Cosmo Lupo, Jeffrey H. Shapiro, Masahiro Takeoka, and Mark M. Wilde

Phys. Rev. X 4, 011016 (2014) - Published 31 January, 2014

Quantum data locking (QDL), proposed as a conceptually different alternative to quantum key distribution, uses a small secret key to lock a much longer message for secure transmission. For practical use, QDL must be robust against noise. Theorists lay the necessary theoretical ground for development of QDL protocols using noisy quantum channels.

Laser Theory for Optomechanics: Limit Cycles in the Quantum Regime

Niels Lörch, Jiang Qian, Aashish Clerk, Florian Marquardt, and Klemens Hammerer

Phys. Rev. X 4, 011015 (2014) - Published 31 January, 2014

In optomechanics it is known that driving a micromechanical oscillator with a laser field can lead to generation of “nonclassical” quantum states of the oscillator. Researchers now fill a theoretical gap by offering an analytical theory to describe the laser-oscillator interaction in a regime of interesting oscillator quantum mechanics and predict “nonclassical” oscillator states where they were unexpected.

Imaging the Conductance of Integer and Fractional Quantum Hall Edge States

Nikola Pascher, Clemens Rössler, Thomas Ihn, Klaus Ensslin, Christian Reichl, and Werner Wegscheider

Phys. Rev. X 4, 011014 (2014) - Published 30 January, 2014

Both the integer and the fractional quantum Hall effects of a two-dimensional electron gas involve one-dimensional channels of electronic transport along edges of the sample. Experimentalists now reveal the internal structures of these edge channels in unprecedented microscopic detail.

Generation of Nondiffracting Electron Bessel Beams

Vincenzo Grillo, Ebrahim Karimi, Gian Carlo Gazzadi, Stefano Frabboni, Mark R. Dennis, and Robert W. Boyd

Phys. Rev. X 4, 011013 (2014) - Published 30 January, 2014

By putting electrons through a phase-modulation hologram, a thin film of silicon nitride with nanoscale grooves of different thicknesses, scientists achieve, for the first time, the generation of diffraction-free electron Bessel beams.

Driven Nonlinear Dynamics of Two Coupled Exchange-Only Qubits

Arijeet Pal, Emmanuel I. Rashba, and Bertrand I. Halperin

Phys. Rev. X 4, 011012 (2014) - Published 30 January, 2014

Realization of quantum computing requires not only qubits that are robust against noise but also control over the crosstalk (entanglement) between them. Following the very recent experimental realization of quantum-dot-based “exchange” qubits, theorists propose a practically feasible method for entangling two such qubits in a controllable way.

Characterization of Quantum Correlations with Local Dimension Constraints and Its Device-Independent Applications

Miguel Navascués, Gonzalo de la Torre, and Tamás Vértesi

Phys. Rev. X 4, 011011 (2014) - Published 30 January, 2014

Device-independent quantum cryptography protocols exploit quantum correlations generated by “black box” quantum devices. The physical dimensionality of such devices may act as a constraint. But which quantum correlations are fundamentally attainable and can be exploited under this constraint? Scientists now develop a new and timely numerical method that answers this question.

Dirac Cones, Topological Edge States, and Nontrivial Flat Bands in Two-Dimensional Semiconductors with a Honeycomb Nanogeometry

E. Kalesaki, C. Delerue, C. Morais Smith, W. Beugeling, G. Allan, and D. Vanmaekelbergh

Phys. Rev. X 4, 011010 (2014) - Published 30 January, 2014

New two-dimensional materials artificially engineered to have unusual electronic properties will broaden the material basis for our quest for ever-smaller, more versatile electronic devices. Theoretical investigation of an artificial honeycomb lattice of zinc-blende semiconductor nanocrystals reveals a rich electronic structure that is part graphene-like and part topological-insulator-like, indicating a new direction of electronic-materials engineering.

Low-Dimensional Dynamics of Populations of Pulse-Coupled Oscillators

Diego Pazó and Ernest Montbrió

Phys. Rev. X 4, 011009 (2014) - Published 29 January, 2014

The Winfree model, a well-known mathematical model for describing collective synchronization in living systems, such as flashing fireflies, has been under-utilized because of its daunting technical complexity. Now scientists have found a way to dramatically reduce it to a technically tractable form and demonstrate the power of the reduction with findings of new “chimera” states in populations of pulse-coupled oscillators.

Spatially Distributed Social Complex Networks

Gerald F. Frasco, Jie Sun, Hernán D. Rozenfeld, and Daniel ben-Avraham

Phys. Rev. X 4, 011008 (2014) - Published 28 January, 2014

How does the geographic distribution of human populations correlate with their networks of social connections? In a simple mathematical model, theorists, for the first time, tie these two phenomena together and show that the model reproduces several interesting features found in real populations.

Magnetic-Moment Fragmentation and Monopole Crystallization

M. E. Brooks-Bartlett, S. T. Banks, L. D. C. Jaubert, A. Harman-Clarke, and P. C. W. Holdsworth

Phys. Rev. X 4, 011007 (2014) - Published 24 January, 2014

In magnetic materials known as spin ice, atomic-scale magnets on certain lattice structures can behave as if they were composed of independent “monopoles.” Scientists now demonstrate that those atomic-scale magnets in concert can fragment into both monopoles and a second fluctuating magnetic moment, with the monopoles forming a crystal and the second segments forming a disordered background magnetic liquid.

Topological Invariants and Ground-State Wave functions of Topological Insulators on a Torus

Zhong Wang and Shou-Cheng Zhang

Phys. Rev. X 4, 011006 (2014) - Published 21 January, 2014

Topological insulators are classified by “topological invariants” characterizing their electronic structures. Identifying and computing topological invariants for insulators in which electron-electron interactions are important is, however, difficult. Theorists now present a way to accomplish this task for a wide range of topological insulators.

Giant Circular Dichroism in Individual Carbon Nanotubes Induced by Extrinsic Chirality

A. Yokoyama, M. Yoshida, A. Ishii, and Y. K. Kato

Phys. Rev. X 4, 011005 (2014) - Published 21 January, 2014

Optical activity—the ability to rotate the polarization of light—was long thought to be only the property of organic molecules without intrinsic structural mirror symmetry. Scientists now demonstrate experimentally that single carbon nanotubes, which have internal mirror symmetry, can be externally induced to exhibit both giant optical activity and a broad range of variability.

Intramembrane Cavitation as a Predictive Bio-Piezoelectric Mechanism for Ultrasonic Brain Stimulation

Michael Plaksin, Shy Shoham, and Eitan Kimmel

Phys. Rev. X 4, 011004 (2014) - Published 21 January, 2014

Recent discovery of neuronal stimulation by low-intensity, focused ultrasound waves has ignited high hope and research effort to develop a noninvasive way to assess and control brain activity with millimeter spatial resolution. But how does the phenomenon work? Scientists now propose the first concrete biophysical model to explain, both qualitatively and quantitatively, the discovery and to guide the methodological development.

Orientation-Dependent Handedness and Chiral Design

Efi Efrati and William T. M. Irvine

Phys. Rev. X 4, 011003 (2014) - Published 16 January, 2014

The handedness of an object has always been a binary concept: either left handed or right handed. Scientists now show that quantifying handedness as direction-dependent properties actually makes fundamental physical sense and can guide both our understanding of known handedness phenomena and design of materials with novel handed-response properties.

Transition-Metal Pentatelluride ZrTe5 and HfTe5: A Paradigm for Large-Gap Quantum Spin Hall Insulators

Hongming Weng, Xi Dai, and Zhong Fang

Phys. Rev. X 4, 011002 (2014) - Published 15 January, 2014

Quantum spin Hall (QSH) insulators, with their insulating interior and conducting edges, have great potential for technological applications. But, scarcity and difficulty in fabrication are major obstacles to their wide applications. Theorists now predict that single sheets that can be exfoliated from two well-known layered thermoelectric compounds, ZrTe5 and HfTe5, are the most promising QSH insulator candidates to date.

Holographic Path to the Turbulent Side of Gravity

Stephen R. Green, Federico Carrasco, and Luis Lehner

Phys. Rev. X 4, 011001 (2014) - Published 9 January, 2014

Gravity/fluid correspondence depicts the recent realization that the dynamics of the latter actually finds analogue in the former. Investigating this correspondence further, theorists now discover a counterpart of fluid turbulence in gravitationally perturbed black holes that gives rise to long-lived, large-scale ”gravitational wave tornadoes.”

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