Recent Articles

Coalescence of Macroscopic Magnetic Islands and Electron Acceleration from STEREO Observation

Hong-Qiang Song (宋红强), Yao Chen (陈耀), Gang Li (李刚), Xiang-Liang Kong (孔祥良), and Shi-Wei Feng (冯士伟)

Phys. Rev. X 2, 021015 (2012) - Published 27 June, 2012

Spacecraft data on immense solar coronal mass ejection (CME) combined with numerical magnetohydrodynamic simulations reveals for the first time both the merging of magnetic islands in a CME’s trailing current sheet and associated electron acceleration.

Carrier-Controlled Ferromagnetism in SrTiO3

Pouya Moetakef, James R. Williams, Daniel G. Ouellette, Adam P. Kajdos, David Goldhaber-Gordon, S. James Allen, and Susanne Stemmer

Phys. Rev. X 2, 021014 (2012) - Published 27 June, 2012

Magnetoresistance measurements on a set of carefully designed samples show that charge-carrier-mediated ferromagnetism and superconductivity – two properties generally considered incompatible – coexist in La-doped SrTiO3 thin films.

Magnetic Fringe-Field Control of Electronic Transport in an Organic Film

Fujian Wang, Ferran Macià, Markus Wohlgenannt, Andrew D. Kent, and Michael E. Flatté

Phys. Rev. X 2, 021013 (2012) - Published 27 June, 2012

Fabrication and investigation of new magnetoelectronic devices reveal an entirely unexpected phenomenon of magnetoresistance in organic semiconductors that not only challenges the existing theories but may also lead to development of new metal-organic-semiconductor hybrid spintronic devices.

Magnetic Interaction between Surface-Engineered Rare-Earth Atomic Spins

Chiung-Yuan Lin, Jheng-Lian Li, Yao-Hsien Hsieh, Keng-Liang Ou, and B. A. Jones

Phys. Rev. X 2, 021012 (2012) - Published 22 June, 2012

Controlling and manipulating magnetism at the atomic level points to a tantalizing future of microscopic-scale computer circuits and data-storage devices. A first theoretical investigation of the magnetic interaction between two closely spaced rare-earth atoms adsorbed on a solid surface opens up a new direction of using rare-earth elements to that end.

Precision Spectral Manipulation: A Demonstration Using a Coherent Optical Memory

B. M. Sparkes, M. Hosseini, C. Cairns, D. Higginbottom, G. T. Campbell, P. K. Lam, and B. C. Buchler

Phys. Rev. X 2, 021011 (2012) - Published 20 June, 2012

Optical pulses stored in the rubidium atoms of a quantum memory can be retrieved at a later time with controllably modified spectral properties useful for quantum information processing.

Loophole-Free Bell Test Based on Local Precertification of Photon’s Presence

Adán Cabello and Fabio Sciarrino

Phys. Rev. X 2, 021010 (2012) - Published 11 June, 2012

A first demonstration of quantum nonlocality without loopholes would rule out all local hidden variables theories. Experimental techniques proposed here remove transmission losses as a limitation, showing that loophole-free tests are feasible.

S4 Symmetric Microscopic Model for Iron-Based Superconductors

Jiangping Hu and Ningning Hao

Phys. Rev. X 2, 021009 (2012) - Published 30 May, 2012

Symmetry considerations point to a universal mechanism responsible for superconductivity in the iron pnictides and the iron chalcogenides.

Proposal for Compact Solid-State III-V Single-Plasmon Sources

C. H. Gan, J. P. Hugonin, and P. Lalanne

Phys. Rev. X 2, 021008 (2012) - Published 23 May, 2012

The idea of placing an ultrasmall photonic cavity next to a plasmonic waveguide with an embedded semiconductor quantum-dot light emitter leads to a new attractive design of a compact single-plasmon source for nanophotonics and quantum information networks.

Quantum Simulation of the Ultrastrong-Coupling Dynamics in Circuit Quantum Electrodynamics

D. Ballester, G. Romero, J. J. García-Ripoll, F. Deppe, and E. Solano

Phys. Rev. X 2, 021007 (2012) - Published 16 May, 2012

Adding a clever twist to a circuit-quantum-eletrodynamics system currently accessible by the standard quantum-optics technology, a theoretical proposal opens up a path for probing and understanding a broad, currently inaccessible range of regimes of light-matter coupling.

Temperature Dependence of Laser-Induced Demagnetization in Ni: A Key for Identifying the Underlying Mechanism

T. Roth, A. J. Schellekens, S. Alebrand, O. Schmitt, D. Steil, B. Koopmans, M. Cinchetti, and M. Aeschlimann

Phys. Rev. X 2, 021006 (2012) - Published 16 May, 2012

A comprehensive set of magneto-optical experiments on ferromagnetic nickel combined with theoretical modeling points to a single microscopic mechanism for laser-induced femtosecond-scale demagnetization.

Statistical-Physics-Based Reconstruction in Compressed Sensing

F. Krzakala, M. Mézard, F. Sausset, Y. F. Sun, and L. Zdeborová

Phys. Rev. X 2, 021005 (2012) - Published 11 May, 2012

A successful interdisciplinary marriage between statistical physics and compressed sensing gives rise to a radically new and powerful strategy for data acquisition and signal reconstruction.

Strong Resilience of Topological Codes to Depolarization

H. Bombin, Ruben S. Andrist, Masayuki Ohzeki, Helmut G. Katzgraber, and M. A. Martin-Delgado

Phys. Rev. X 2, 021004 (2012) - Published 30 April, 2012

Statistical mechanical models are the key to understanding the performance of error correction in topological quantum computers.

Coupling Quantum States through a Continuum: A Mesoscopic Multistate Fano Resonance

Y. Yoon, M.-G. Kang, T. Morimoto, M. Kida, N. Aoki, J. L. Reno, Y. Ochiai, L. Mourokh, J. Fransson, and J. P. Bird

Phys. Rev. X 2, 021003 (2012) - Published 24 April, 2012

When you separate two localized quantum states of electrons spatially, you expect their interaction to become weaker. Connecting two such states with an electron gas in a mesoscopic electronic-transport device, a deft experiment, supported by theoretical modeling, shows that the opposite happens.

Publisher’s Note: Engineering a Robust Quantum Spin Hall State in Graphene via Adatom Deposition [Phys. Rev. X 1, 021001 (2011)]

Conan Weeks, Jun Hu, Jason Alicea, Marcel Franz, and Ruqian Wu

Phys. Rev. X 2, 029901 (2012) - Published 5 April, 2012

Stochastic Sensing of Polynucleotides Using Patterned Nanopores

Jack A. Cohen, Abhishek Chaudhuri, and Ramin Golestanian

Phys. Rev. X 2, 021002 (2012) - Published 5 April, 2012

Electric-field driven translocation of a DNA or RNA molecule across a nanopore has been widely explored as a method for molecular sequencing. But, the process is inherently noisy. Finding ways to fight the noise seems a matter of course. Here, however, a UK team demonstrates a clever way to turn the noise into gains towards fast and accurate molecular sequencing.

Super Rogue Waves: Observation of a Higher-Order Breather in Water Waves

A. Chabchoub, N. Hoffmann, M. Onorato, and N. Akhmediev

Phys. Rev. X 2, 011015 (2012) - Published 29 March, 2012

How rogue waves in the ocean come about still is a scientific puzzle. But, for the first time, super rogue waves are not only generated in a water-wave tank, but are also understood.

A Waveguide-Coupled On-Chip Single-Photon Source

A. Laucht, S. Pütz, T. Günthner, N. Hauke, R. Saive, S. Frédérick, M. Bichler, M.-C. Amann, A. W. Holleitner, M. Kaniber, and J. J. Finley

Phys. Rev. X 2, 011014 (2012) - Published 29 March, 2012

A single light-emitting quantum dot placed in a photonic-crystal waveguide can work as a high-efficiency, broadband single-photon source for on-chip implementations of quantum photonics, as shown here by an international group.

Theoretical Analysis of Inertia-like Switching in Magnets: Applications to a Synthetic Antiferromagnet

Satadeep Bhattacharjee, Anders Bergman, Andrea Taroni, Johan Hellsvik, Biplab Sanyal, and Olle Eriksson

Phys. Rev. X 2, 011013 (2012) - Published 29 March, 2012

Field-induced switching of magnetization in a magnetic material is central to magnetic data-storage technologies. A theoretical investigation of the microscopic dynamics of atomic spins in both antiferromagnetic and ferromagnetic systems leads to fundamental insights into laser-induced magnetic switching.

Entanglement Entropy of Fermi Liquids via Multidimensional Bosonization

Wenxin Ding, Alexander Seidel, and Kun Yang

Phys. Rev. X 2, 011012 (2012) - Published 20 March, 2012

Highly deft technical work by a group of three theoretical physicists leads to much needed fundamental understanding of the “area law” governing the entanglement entropy of a many-particle quantum system and shows that the leading form of the law survives the addition of particle-particle interactions.

Publisher’s Note: First-Order 0π Quantum Phase Transition in the Kondo Regime of a Superconducting Carbon-Nanotube Quantum Dot [Phys. Rev. X 2, 011009 (2012)]

Romain Maurand, Tobias Meng, Edgar Bonet, Serge Florens, Laëtitia Marty, and Wolfgang Wernsdorfer

Phys. Rev. X 2, 019901 (2012) - Published 15 March, 2012

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