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Quantum Sensors for the Generating Functional of Interacting Quantum Field Theories

A. Bermudez, G. Aarts, and M. Müller

Phys. Rev. X 7, 041012 (2017) - Published 19 October, 2017

Quantum simulation offers a powerful approach to testing quantum field theories (QFTs) via precise manipulation of atomic and molecular experiments that emulate the theories under investigation. A new analysis introduces a protocol for implementing a generating functional, the cornerstone of any QFT, in the lab.

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.

Adaptive Quantum Metrology under General Markovian Noise

Rafał Demkowicz-Dobrzański, Jan Czajkowski, and Pavel Sekatski

Phys. Rev. X 7, 041009 (2017) - Published 16 October, 2017

Quantum metrology is a technique for using principles of quantum theory to make ultraprecise measurements of physical systems, however, its effectiveness is frequently hampered by environmental noise. A new theoretical analysis provides criteria for knowing whether noise will impact a measurement and if corrections are possible.

Exploring Interacting Topological Insulators with Ultracold Atoms: The Synthetic Creutz-Hubbard Model

J. Jünemann, A. Piga, S.-J. Ran, M. Lewenstein, M. Rizzi, and A. Bermudez

Phys. Rev. X 7, 031057 (2017) - Published 27 September, 2017

Understanding the behavior of topological phases of matter in the presence of strong interactions and correlations is one of the big challenges in modern physics. New theoretical work analyzes a potential platform for addressing these challenges and proposes how it might be implemented in a one-dimensional optical lattice.

Entanglement-Based dc Magnetometry with Separated Ions

T. Ruster, H. Kaufmann, M. A. Luda, V. Kaushal, C. T. Schmiegelow, F. Schmidt-Kaler, and U. G. Poschinger

Phys. Rev. X 7, 031050 (2017) - Published 21 September, 2017

Magnetometers based on the spins of single electrons offer a way to precisely characterize magnetic fields at microscopic scales but are highly sensitive to noisy environments. New experiments show a way to build a more robust single-spin magnetometer using entangled calcium ions.

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.

Combining Topological Hardware and Topological Software: Color-Code Quantum Computing with Topological Superconductor Networks

Daniel Litinski, Markus S. Kesselring, Jens Eisert, and Felix von Oppen

Phys. Rev. X 7, 031048 (2017) - Published 15 September, 2017

Preserving the delicate states that store information in a quantum computer when dealing with a noisy environment is a considerable challenge, and many researchers are turning to hardware- and software-based topological protection as a solution. A new paradigm based on error-correcting color codes combines the advantages of both hardware and software and enables a scalable approach to fault-tolerant quantum computing.

Quantum Image Processing and Its Application to Edge Detection: Theory and Experiment

Xi-Wei Yao, Hengyan Wang, Zeyang Liao, Ming-Cheng Chen, Jian Pan, Jun Li, Kechao Zhang, Xingcheng Lin, Zhehui Wang, Zhihuang Luo, Wenqiang Zheng, Jianzhong Li, Meisheng Zhao, Xinhua Peng, and Dieter Suter

Phys. Rev. X 7, 031041 (2017) - Published 11 September, 2017

Analysis of the large amounts of image data requires increasingly expensive and time-consuming computational resources. Quantum computing may offer a shortcut. A new edge-detection algorithm based on a specific quantum image representation shows exponentially faster performance compared to classical methods.

Deterministic Enhancement of Coherent Photon Generation from a Nitrogen-Vacancy Center in Ultrapure Diamond

Daniel Riedel, Immo Söllner, Brendan J. Shields, Sebastian Starosielec, Patrick Appel, Elke Neu, Patrick Maletinsky, and Richard J. Warburton

Phys. Rev. X 7, 031040 (2017) - Published 7 September, 2017

Nitrogen-vacancy centers—a type of atom-sized defect in diamonds—have potential for use as quantum bits in quantum information technologies. However, low rates of entanglement between the defect spin and the photons they produce hamper the mediation of long-distance connections. A new experiment shows a way around this limitation by employing a tunable, miniaturized Fabry-Pérot microcavity.

Fluxonium-Based Artificial Molecule with a Tunable Magnetic Moment

A. Kou, W. C. Smith, U. Vool, R. T. Brierley, H. Meier, L. Frunzio, S. M. Girvin, L. I. Glazman, and M. H. Devoret

Phys. Rev. X 7, 031037 (2017) - Published 29 August, 2017

Artificial molecules built from superconducting circuits can potentially be used as probes of external fields that cannot be studied with devices built from naturally occurring atoms. A new study demonstrates how the magnetic moment of a molecule built from two artificial fluxonium atoms changes in response to an external magnetic field.

Aperiodically Driven Integrable Systems and Their Emergent Steady States

Sourav Nandy, Arnab Sen, and Diptiman Sen

Phys. Rev. X 7, 031034 (2017) - Published 22 August, 2017

Driving of many-body quantum systems leads to steady-state behavior not seen when the system is at equilibrium. While the outcome of a periodic drive is well explored, the same can’t be said for aperiodic drives. A new analysis shows that aperiodic drives can lead to novel steady-state behavior not seen in periodically driven systems.

Equilibration Time Scales of Physically Relevant Observables

Luis Pedro García-Pintos, Noah Linden, Artur S. L. Malabarba, Anthony J. Short, and Andreas Winter

Phys. Rev. X 7, 031027 (2017) - Published 10 August, 2017

The tendency for a macroscopic system to reach equilibrium could depend on underlying quantum behaviors, but showing that this can happen in a reasonable time is difficult. A new analysis demonstrates that for certain classes of physically relevant observables, conditions exist where this is possible.

Measuring Entropy and Short-Range Correlations in the Two-Dimensional Hubbard Model

E. Cocchi, L. A. Miller, J. H. Drewes, C. F. Chan, D. Pertot, F. Brennecke, and M. Köhl

Phys. Rev. X 7, 031025 (2017) - Published 4 August, 2017

The physics of strongly correlated matter, where interactions among atoms and particles can lead to exotic macroscopic properties, is difficult to understand theoretically. A realization of the leading theoretical model provides insight into these correlations from thermodynamic measurements.

Observing Topological Invariants Using Quantum Walks in Superconducting Circuits

E. Flurin, V. V. Ramasesh, S. Hacohen-Gourgy, L. S. Martin, N. Y. Yao, and I. Siddiqi

Phys. Rev. X 7, 031023 (2017) - Published 3 August, 2017

Topological invariants, properties of a system that remain unchanged by small deformations, are key to modern understanding of phases of matter but have yet to be directly detected by experiment. A new quantum simulation shows how quantum walks can be used to measure topological invariants for the first time.

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.

Quantum Entanglement Growth under Random Unitary Dynamics

Adam Nahum, Jonathan Ruhman, Sagar Vijay, and Jeongwan Haah

Phys. Rev. X 7, 031016 (2017) - Published 24 July, 2017

Physicists have long sought to understand how quantum dynamics generates the nonlocal correlations known as entanglement. Theoretical models are proposed to explain the growth of entanglement over time in different numbers of spatial dimensions.

Tomography of a Mode-Tunable Coherent Single-Photon Subtractor

Young-Sik Ra, Clément Jacquard, Adrien Dufour, Claude Fabre, and Nicolas Treps

Phys. Rev. X 7, 031012 (2017) - Published 19 July, 2017

A mode-selective nonlinear optics technique is used to extract a single photon from multimode light, a key operation for hybrid optical quantum information processing.

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.

Stretchable Persistent Spin Helices in GaAs Quantum Wells

Florian Dettwiler, Jiyong Fu, Shawn Mack, Pirmin J. Weigele, J. Carlos Egues, David D. Awschalom, and Dominik M. Zumbühl

Phys. Rev. X 7, 031010 (2017) - Published 18 July, 2017

Controlling the electron spin could be an effective way to store and manipulate information in quantum devices, but it is challenging because spins randomize over time. A novel technique demonstrates, experimentally, a way to manipulate spin as an electron travels across a chip while being protected from randomization.

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