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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.

Resummation for Nonequilibrium Perturbation Theory and Application to Open Quantum Lattices

Andy C. Y. Li, F. Petruccione, and Jens Koch

Phys. Rev. X 6, 021037 (2016) - Published 16 June, 2016

Systems of interacting photons are an intriguing arena for studying nonequilibrium many-body physics. Researchers theoretically investigate computational tools to validate experimental data and pave the way for studies using quantum simulators.

Generalized Geometric Quantum Speed Limits

Diego Paiva Pires, Marco Cianciaruso, Lucas C. Céleri, Gerardo Adesso, and Diogo O. Soares-Pinto

Phys. Rev. X 6, 021031 (2016) - Published 2 June, 2016

Understanding the speed with which a quantum system can evolve between distinguishable states has applications in quantum technology. A new theoretical study demonstrates a general family of quantum speed limits that can be applied to any physical process.

Open-System Quantum Annealing in Mean-Field Models with Exponential Degeneracy

Kostyantyn Kechedzhi and Vadim N. Smelyanskiy

Phys. Rev. X 6, 021028 (2016) - Published 31 May, 2016

Intrinsic noise is unavoidable in quantum devices and represents a hindrance to implementing quantum computation. Despite the presence of noise, a quantum-annealing algorithm that involves quantum tunneling may provide computational advantages over simulated annealing.

Compressively Characterizing High-Dimensional Entangled States with Complementary, Random Filtering

Gregory A. Howland, Samuel H. Knarr, James Schneeloch, Daniel J. Lum, and John C. Howell

Phys. Rev. X 6, 021018 (2016) - Published 12 May, 2016

In quantum mechanics, Heisenberg’s uncertainty principle prevents the determination of precise, simultaneous measurements of two quantities. A new approach extracts position and momentum information from the same group of entangled photons by dramatically undersampling the system.

Erratum: Robust Extraction of Tomographic Information via Randomized Benchmarking [Phys. Rev. X 4, 011050 (2014)]

Shelby Kimmel, Marcus P. da Silva, Colm A. Ryan, Blake R. Johnson, and Thomas Ohki

Phys. Rev. X 6, 029902 (2016) - Published 3 May, 2016

A Practical Phase Gate for Producing Bell Violations in Majorana Wires

David J. Clarke, Jay D. Sau, and Sankar Das Sarma

Phys. Rev. X 6, 021005 (2016) - Published 8 April, 2016

Fault-tolerant topological quantum computation has long been a goal of physicists. A theoretical proposal shows how Majorana zero modes can be used in a universal quantum computer in a manner that avoids precise timing requirements.

Photon-Mediated Interactions: A Scalable Tool to Create and Sustain Entangled States of N Atoms

Camille Aron, Manas Kulkarni, and Hakan E. Türeci

Phys. Rev. X 6, 011032 (2016) - Published 23 March, 2016

Light-mediated interactions are commonplace in both the laboratory and nature, and now researchers show how to harness them to generate and sustain large-scale quantum entanglement in extended networks of qubits.

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.

Measurement-Device-Independent Quantum Key Distribution over Untrustful Metropolitan Network

Yan-Lin Tang, Hua-Lei Yin, Qi Zhao, Hui Liu, Xiang-Xiang Sun, Ming-Qi Huang, Wei-Jun Zhang, Si-Jing Chen, Lu Zhang, Li-Xing You, Zhen Wang, Yang Liu, Chao-Yang Lu, Xiao Jiang, Xiongfeng Ma, Qiang Zhang, Teng-Yun Chen, and Jian-Wei Pan

Phys. Rev. X 6, 011024 (2016) - Published 4 March, 2016

Unconditionally secure communication between remote parties has many applications in finance and industry. Now, a quantum key distribution network spread over a metropolitan area is shown to be secure against untrustworthy relays.

Real-Time Dynamics in U(1) Lattice Gauge Theories with Tensor Networks

T. Pichler, M. Dalmonte, E. Rico, P. Zoller, and S. Montangero

Phys. Rev. X 6, 011023 (2016) - Published 3 March, 2016

String breaking refers to flux strings breaking, resulting in the production of particle-antiparticle pairs. Now, investigators quantitatively analyze the real-time evolution of string breaking and study the growth of the system entanglement.

Comparing and Combining Measurement-Based and Driven-Dissipative Entanglement Stabilization

Y. Liu, S. Shankar, N. Ofek, M. Hatridge, A. Narla, K. M. Sliwa, L. Frunzio, R. J. Schoelkopf, and M. H. Devoret

Phys. Rev. X 6, 011022 (2016) - Published 3 March, 2016

Error correction by feedback is crucial in quantum computation, and an experiment now shows that two such methods can be integrated in a nested feedback protocol to obtain the best properties of both.

Erratum: Arbitrarily Loss-Tolerant Einstein-Podolsky-Rosen Steering Allowing a Demonstration over 1 km of Optical Fiber with No Detection Loophole [Phys. Rev. X 2, 031003 (2012)]

A. J. Bennet, D. A. Evans, D. J. Saunders, C. Branciard, E. G. Cavalcanti, H. M. Wiseman, and G. J. Pryde

Phys. Rev. X 6, 019902 (2016) - Published 1 March, 2016

Source-Independent Quantum Random Number Generation

Zhu Cao, Hongyi Zhou, Xiao Yuan, and Xiongfeng Ma

Phys. Rev. X 6, 011020 (2016) - Published 25 February, 2016

Cryptographic science and lotteries both rely on the generation of random numbers. Researchers demonstrate a photonic setup that can reliably generate random numbers.

Maximal Adaptive-Decision Speedups in Quantum-State Readout

B. D’Anjou, L. Kuret, L. Childress, and W. A. Coish

Phys. Rev. X 6, 011017 (2016) - Published 23 February, 2016

Reducing the time necessary for experimental measurements allows more data to be obtained, which in turn leads to a more sensitive result. A roughly twofold speedup in differentiating between two charge states of a point defect in diamond is demonstrated, which could substantially facilitate the detection of small magnetic fields.

Publisher’s Note: Photon Temporal Modes: A Complete Framework for Quantum Information Science [Phys. Rev. X 5, 041017 (2015)]

B. Brecht, Dileep V. Reddy, C. Silberhorn, and M. G. Raymer

Phys. Rev. X 6, 019901 (2016) - Published 28 January, 2016

Observing Quantum State Diffusion by Heterodyne Detection of Fluorescence

P. Campagne-Ibarcq, P. Six, L. Bretheau, A. Sarlette, M. Mirrahimi, P. Rouchon, and B. Huard

Phys. Rev. X 6, 011002 (2016) - Published 5 January, 2016

A quantum system can jump into its ground state by emitting a photon. Now, scientists produce a superposition of ground and excited states by just measuring the emitted light.

Exploring the Limits of Quantum Nonlocality with Entangled Photons

Bradley G. Christensen, Yeong-Cherng Liang, Nicolas Brunner, Nicolas Gisin, and Paul G. Kwiat

Phys. Rev. X 5, 041052 (2015) - Published 30 December, 2015

Researchers explore the limits of quantum theory using pairs of entangled photons and find results consistent with quantum predictions.

Exploring Interacting Quantum Many-Body Systems by Experimentally Creating Continuous Matrix Product States in Superconducting Circuits

C. Eichler, J. Mlynek, J. Butscher, P. Kurpiers, K. Hammerer, T. J. Osborne, and A. Wallraff

Phys. Rev. X 5, 041044 (2015) - Published 16 December, 2015

Correlated quantum many-body systems appear in physics, chemistry, and biology. Researchers simulate and explore such systems using an experimentally controlled superconducting quantum device.

Parafermions in a Kagome Lattice of Qubits for Topological Quantum Computation

Adrian Hutter, James R. Wootton, and Daniel Loss

Phys. Rev. X 5, 041040 (2015) - Published 14 December, 2015

Error correction is critical in topological quantum computation, but it restricts the quantum gates that can be easily performed. A proposed model shows how to correct errors and perform complex gates by braiding in realistic qubit systems that support non-Abelian parafermions.

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