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Irreversible Qubit-Photon Coupling for the Detection of Itinerant Microwave Photons

Raphaël Lescanne, Samuel Deléglise, Emanuele Albertinale, Ulysse Réglade, Thibault Capelle, Edouard Ivanov, Thibaut Jacqmin, Zaki Leghtas, and Emmanuel Flurin

Phys. Rev. X 10, 021038 (2020) - Published 18 May, 2020

A new single-photon detector minimizes false positives by ensuring that a qubit switches to its excited state if and only if a photon enters a microwave resonator.

Driven-Dissipative Quantum Kerr Resonators: New Exact Solutions, Photon Blockade and Quantum Bistability

David Roberts and Aashish A. Clerk

Phys. Rev. X 10, 021022 (2020) - Published 29 April, 2020

A new approach to describing the interplay between quantum mechanics, nonequilibrium driving, and dissipation could enable a paradigm shift in how bosonic systems are used in quantum-based technologies.

Photonic-Crystal Josephson Traveling-Wave Parametric Amplifier

Luca Planat, Arpit Ranadive, Rémy Dassonneville, Javier Puertas Martínez, Sébastien Léger, Cécile Naud, Olivier Buisson, Wiebke Hasch-Guichard, Denis M. Basko, and Nicolas Roch

Phys. Rev. X 10, 021021 (2020) - Published 28 April, 2020

A new solution to the phase-matching problem common to so-called traveling-wave parametric amplifiers is achieved with a simple design that’s easy to fabricate.

Quantum Logic Spectroscopy with Ions in Thermal Motion

D. Kienzler, Y. Wan, S. D. Erickson, J. J. Wu, A. C. Wilson, D. J. Wineland, and D. Leibfried

Phys. Rev. X 10, 021012 (2020) - Published 16 April, 2020

An enhanced version of quantum logic spectroscopy, used to map absorption and emission from single atoms, tolerates some ion motion and entangles several ions for improved sensitivity.

Repetitive Quantum Nondemolition Measurement and Soft Decoding of a Silicon Spin Qubit

Xiao Xue, Benjamin D’Anjou, Thomas F. Watson, Daniel R. Ward, Donald E. Savage, Max G. Lagally, Mark Friesen, Susan N. Coppersmith, Mark A. Eriksson, William A. Coish, and Lieven M. K. Vandersypen

Phys. Rev. X 10, 021006 (2020) - Published 8 April, 2020

An experiment measures an individual electron spin with high fidelity and without demolishing it, thus setting the stage for robust quantum error correction with spin qubits in silicon.

Coherence of a Driven Electron Spin Qubit Actively Decoupled from Quasistatic Noise

Takashi Nakajima, Akito Noiri, Kento Kawasaki, Jun Yoneda, Peter Stano, Shinichi Amaha, Tomohiro Otsuka, Kenta Takeda, Matthieu R. Delbecq, Giles Allison, Arne Ludwig, Andreas D. Wieck, Daniel Loss, and Seigo Tarucha

Phys. Rev. X 10, 011060 (2020) - Published 10 March, 2020

A feedback control technique suppresses low-frequency noise in an electron-spin qubit, boosting coherence time and control fidelity.

Quantum Computing with Rotation-Symmetric Bosonic Codes

Arne L. Grimsmo, Joshua Combes, and Ben Q. Baragiola

Phys. Rev. X 10, 011058 (2020) - Published 6 March, 2020

A unifying framework for quantum error-correcting codes based on collections of bosons allows for the discovery of new codes that provide robust error correction in line with fundamental theoretical limits.

Parity Detection of Propagating Microwave Fields

Jean-Claude Besse, Simone Gasparinetti, Michele C. Collodo, Theo Walter, Ants Remm, Jonas Krause, Christopher Eichler, and Andreas Wallraff

Phys. Rev. X 10, 011046 (2020) - Published 26 February, 2020

An experiment that can distinguish between an even or odd number of photons in a microwave pulse could lead to a versatile tool for identifying errors in quantum communication channels.

Fast High-Fidelity Quantum Nondemolition Qubit Readout via a Nonperturbative Cross-Kerr Coupling

R. Dassonneville, T. Ramos, V. Milchakov, L. Planat, É. Dumur, F. Foroughi, J. Puertas, S. Leger, K. Bharadwaj, J. Delaforce, C. Naud, W. Hasch-Guichard, J. J. García-Ripoll, N. Roch, and O. Buisson

Phys. Rev. X 10, 011045 (2020) - Published 25 February, 2020

A new qubit readout scheme preserves quantum state probabilities while maximizing fidelity with a fast readout time, thus providing a robust measurement method for a new generation of superconducting quantum processors.

Long-Range Prethermal Phases of Nonequilibrium Matter

Francisco Machado, Dominic V. Else, Gregory D. Kahanamoku-Meyer, Chetan Nayak, and Norman Y. Yao

Phys. Rev. X 10, 011043 (2020) - Published 21 February, 2020

The existence of prethermal phases of matter in long-range interacting systems is remarkably robust, opening the door to the experimental realization of a novel, disorder-free, prethermal discrete time crystal in 1D.

Experimental Demonstration of Quantum Fully Homomorphic Encryption with Application in a Two-Party Secure Protocol

W. K. Tham, Hugo Ferretti, Kent Bonsma-Fisher, Aharon Brodutch, Barry C. Sanders, Aephraim M. Steinberg, and Stacey Jeffery

Phys. Rev. X 10, 011038 (2020) - Published 18 February, 2020

An experimental implementation of fully homomorphic encryption is the first to be unencumbered by limitations that prevented previous approaches from being used in a wide variety of cryptographic applications.

Topological and Subsystem Codes on Low-Degree Graphs with Flag Qubits

Christopher Chamberland, Guanyu Zhu, Theodore J. Yoder, Jared B. Hertzberg, and Andrew W. Cross

Phys. Rev. X 10, 011022 (2020) - Published 31 January, 2020

A new proposed family of quantum error correcting codes and a scalable and efficient flag-based decoding scheme are suitable for implementation in superconducting qubit architectures and offer competitive performance to other error-correction schemes.

Nonergodic Delocalized States for Efficient Population Transfer within a Narrow Band of the Energy Landscape

Vadim N. Smelyanskiy, Kostyantyn Kechedzhi, Sergio Boixo, Sergei V. Isakov, Hartmut Neven, and Boris Altshuler

Phys. Rev. X 10, 011017 (2020) - Published 24 January, 2020

An analysis of a quantum model of a spin glass shows how to efficiently find its low-energy configurations, which can be applied to the development of efficient quantum computing algorithms.

Observation of Three-Photon Spontaneous Parametric Down-Conversion in a Superconducting Parametric Cavity

C. W. Sandbo Chang, Carlos Sabín, P. Forn-Díaz, Fernando Quijandría, A. M. Vadiraj, I. Nsanzineza, G. Johansson, and C. M. Wilson

Phys. Rev. X 10, 011011 (2020) - Published 16 January, 2020

A long-sought three-photon version of spontaneous parametric down-conversion, a common technique for entangled photon generation, lays the groundwork for expanded investigations into novel types of quantum entanglements and quantum computing resources.

Using a Recurrent Neural Network to Reconstruct Quantum Dynamics of a Superconducting Qubit from Physical Observations

E. Flurin, L. S. Martin, S. Hacohen-Gourgy, and I. Siddiqi

Phys. Rev. X 10, 011006 (2020) - Published 9 January, 2020

A neutral network shows the ability to infer complex quantum behavior of a superconducting qubit without any prior knowledge about the rules of quantum physics.

Increasing the Representation Accuracy of Quantum Simulations of Chemistry without Extra Quantum Resources

Tyler Takeshita, Nicholas C. Rubin, Zhang Jiang, Eunseok Lee, Ryan Babbush, and Jarrod R. McClean

Phys. Rev. X 10, 011004 (2020) - Published 7 January, 2020

The right combination of quantum and classical computations allows for accurate quantum chemistry simulations using surprisingly few qubits.

High-Fidelity Measurement of Qubits Encoded in Multilevel Superconducting Circuits

Salvatore S. Elder, Christopher S. Wang, Philip Reinhold, Connor T. Hann, Kevin S. Chou, Brian J. Lester, Serge Rosenblum, Luigi Frunzio, Liang Jiang, and Robert J. Schoelkopf

Phys. Rev. X 10, 011001 (2020) - Published 2 January, 2020

By using redundant measurements and multiphoton states, a new approach to encoding and reading quantum bits drastically reduces errors that typically lead to a loss of information.

Asymptotic Security Analysis of Discrete-Modulated Continuous-Variable Quantum Key Distribution

Jie Lin, Twesh Upadhyaya, and Norbert Lütkenhaus

Phys. Rev. X 9, 041064 (2019) - Published 30 December, 2019

A new analysis demonstrates that discrete-modulated CV QKD, a quantum key establishment protocol, can become a cost-effective tool for securing current classical and future quantum networks over long distances.

Repetition Cat Qubits for Fault-Tolerant Quantum Computation

Jérémie Guillaud and Mazyar Mirrahimi

Phys. Rev. X 9, 041053 (2019) - Published 12 December, 2019

A new implementation of quantum error-correcting “cat codes” could be extended to a fully tolerant, universal quantum computer with minimal hardware overhead.

Overcoming Noise in Entanglement Distribution

Sebastian Ecker, Frédéric Bouchard, Lukas Bulla, Florian Brandt, Oskar Kohout, Fabian Steinlechner, Robert Fickler, Mehul Malik, Yelena Guryanova, Rupert Ursin, and Marcus Huber

Phys. Rev. X 9, 041042 (2019) - Published 26 November, 2019

Photons entangled in high dimensions are more resilient to noise, making them ideal for quantum communication applications.

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