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Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped Crystal

Sacha Welinski, Alexey Tiranov, Moritz Businger, Alban Ferrier, Mikael Afzelius, and Philippe Goldner

Phys. Rev. X 10, 031060 (2020) - Published 16 September, 2020

A technique to spread the polarization of spins from an initial small group of optically excited spins drastically increases the spin and optical coherence time, a key parameter for quantum technologies.

Robust Encoding of a Qubit in a Molecule

Victor V. Albert, Jacob P. Covey, and John Preskill

Phys. Rev. X 10, 031050 (2020) - Published 1 September, 2020

A new proposal for how to encode quantum information in the rotational states of individual molecules could protect these qubits from losing information as a result of noise.

Symmetry-Protected Self-Correcting Quantum Memories

Sam Roberts and Stephen D. Bartlett

Phys. Rev. X 10, 031041 (2020) - Published 20 August, 2020

Symmetry and topology can provide for self-correcting quantum codes in a 3D topologically ordered spin lattice, a key insight for building quantum memories that correct their own errors without active control.

Emergent Spatial Structure and Entanglement Localization in Floquet Conformal Field Theory

Ruihua Fan, Yingfei Gu, Ashvin Vishwanath, and Xueda Wen

Phys. Rev. X 10, 031036 (2020) - Published 14 August, 2020

A new analysis reveals an exact analytic solution for a recently proposed model of Floquet systems (those continuously driven in a time-periodic way), which could help studies of nonequilibrium states of matter.

Implementation of a Transmon Qubit Using Superconducting Granular Aluminum

Patrick Winkel, Kiril Borisov, Lukas Grünhaupt, Dennis Rieger, Martin Spiecker, Francesco Valenti, Alexey V. Ustinov, Wolfgang Wernsdorfer, and Ioan M. Pop

Phys. Rev. X 10, 031032 (2020) - Published 11 August, 2020

Experiments demonstrate a superconducting qubit that leverages nonlinearity in granular aluminum, a useful step in the development of hybrid quantum circuits that combine superconductivity with other degrees of freedom.

High-Speed Measurement-Device-Independent Quantum Key Distribution with Integrated Silicon Photonics

Kejin Wei, Wei Li, Hao Tan, Yang Li, Hao Min, Wei-Jun Zhang, Hao Li, Lixing You, Zhen Wang, Xiao Jiang, Teng-Yun Chen, Sheng-Kai Liao, Cheng-Zhi Peng, Feihu Xu, and Jian-Wei Pan

Phys. Rev. X 10, 031030 (2020) - Published 10 August, 2020

A new implementation of quantum key distribution enables a cost-effective, high-rate, and secure quantum network with an untrusted relay.

Scalable Arrays of Micro-Penning Traps for Quantum Computing and Simulation

S. Jain, J. Alonso, M. Grau, and J. P. Home

Phys. Rev. X 10, 031027 (2020) - Published 5 August, 2020

A proposal for a 2D ion trap, based on arrays of microstructured electrodes in a magnetic field, could provide a powerful platform for scalable quantum computing and quantum simulation.

Quantum Semiparametric Estimation

Mankei Tsang, Francesco Albarelli, and Animesh Datta

Phys. Rev. X 10, 031023 (2020) - Published 30 July, 2020

A new analysis offers a way to derive relatively simple analytical limits on quantum measurements even for complex or poorly understood systems, with applications in imaging, interferometry, and quantum-information processing.

Speed-Ups to Isothermality: Enhanced Quantum Thermal Machines through Control of the System-Bath Coupling

Nicola Pancotti, Matteo Scandi, Mark T. Mitchison, and Martí Perarnau-Llobet

Phys. Rev. X 10, 031015 (2020) - Published 20 July, 2020

Controlling the system-bath coupling in a heat engine leads to the construction of Carnot engines with greatly increased efficiency, a useful insight for the design of improved quantum-based thermal machines.

Strictly Linear Light Cones in Long-Range Interacting Systems of Arbitrary Dimensions

Tomotaka Kuwahara and Keiji Saito

Phys. Rev. X 10, 031010 (2020) - Published 13 July, 2020

Quantum systems with long-range interactions have a finite speed at which information can propagate, a speed that is determined by the dimensionality of the system.

Hierarchy of Linear Light Cones with Long-Range Interactions

Minh C. Tran, Chi-Fang Chen, Adam Ehrenberg, Andrew Y. Guo, Abhinav Deshpande, Yifan Hong, Zhe-Xuan Gong, Alexey V. Gorshkov, and Andrew Lucas

Phys. Rev. X 10, 031009 (2020) - Published 13 July, 2020

Quantum systems with certain long-range interactions exhibit a hierarchy of limits on information transfer rates—a set of nested “light cones”—that set fundamental restrictions for a range of quantum-based technologies.

Coherent Multispin Exchange Coupling in a Quantum-Dot Spin Chain

Haifeng Qiao, Yadav P. Kandel, Kuangyin Deng, Saeed Fallahi, Geoffrey C. Gardner, Michael J. Manfra, Edwin Barnes, and John M. Nichol

Phys. Rev. X 10, 031006 (2020) - Published 8 July, 2020

A new method for controlling interactions among multiple electron spins allows for efficient information transfer between distant qubits, opening the door to many scalable quantum computing applications.

One-Way Quantum Repeater Based on Near-Deterministic Photon-Emitter Interfaces

Johannes Borregaard, Hannes Pichler, Tim Schröder, Mikhail D. Lukin, Peter Lodahl, and Anders S. Sørensen

Phys. Rev. X 10, 021071 (2020) - Published 30 June, 2020

A proposed protocol for a one-way quantum repeater could enable robust long-distance quantum communication with significantly fewer resources than other proposals.

Quantum Approximate Optimization Algorithm: Performance, Mechanism, and Implementation on Near-Term Devices

Leo Zhou, Sheng-Tao Wang, Soonwon Choi, Hannes Pichler, and Mikhail D. Lukin

Phys. Rev. X 10, 021067 (2020) - Published 24 June, 2020

A new parameter optimization method for a hybrid quantum-classical algorithm shows how it can exploit novel mechanisms to speed up computational time by orders of magnitude.

Connector Tensor Networks: A Renormalization-Type Approach to Quantum Certification

Miguel Navascués, Sukhbinder Singh, and Antonio Acín

Phys. Rev. X 10, 021064 (2020) - Published 19 June, 2020

Using insights from statistical physics, a new approach to detecting quantum properties such as entanglement works for large systems and can be tailored to identify a wide variety of global collective properties.

Efficient Multiphoton Sampling of Molecular Vibronic Spectra on a Superconducting Bosonic Processor

Christopher S. Wang, Jacob C. Curtis, Brian J. Lester, Yaxing Zhang, Yvonne Y. Gao, Jessica Freeze, Victor S. Batista, Patrick H. Vaccaro, Isaac L. Chuang, Luigi Frunzio, Liang Jiang, S. M. Girvin, and Robert J. Schoelkopf

Phys. Rev. X 10, 021060 (2020) - Published 17 June, 2020

A quantum simulator uses microwave photons to tackle a useful chemistry problem—determining the vibronic spectra of molecules.

Fast Navigation in a Large Hilbert Space Using Quantum Optimal Control

Arthur Larrouy, Sabrina Patsch, Rémi Richaud, Jean-Michel Raimond, Michel Brune, Christiane P. Koch, and Sébastien Gleyzes

Phys. Rev. X 10, 021058 (2020) - Published 16 June, 2020

By carefully shaping radio frequency pulses, experiments show how to quickly and efficiently prepare a single atom in one of several desired states, a key ability for a variety of quantum technologies.

Quantum Erasure Using Entangled Surface Acoustic Phonons

A. Bienfait, Y. P. Zhong, H.-S. Chang, M.-H. Chou, C. R. Conner, É. Dumur, J. Grebel, G. A. Peairs, R. G. Povey, K. J. Satzinger, and A. N. Cleland

Phys. Rev. X 10, 021055 (2020) - Published 12 June, 2020

A new experiment implements a quantum eraser using phonons rather than light, erasing information about which path a phonon travels in an interferometer to recover the interference pattern.

Fast Multiqubit Gates by Adiabatic Evolution in Interacting Excited-State Manifolds of Rydberg Atoms and Superconducting Circuits

Mohammadsadegh Khazali and Klaus Mølmer

Phys. Rev. X 10, 021054 (2020) - Published 11 June, 2020

An approach to quantum computing with Rydberg atoms or superconducting qubits suggests using multiqubit gates, rather than one- and two-qubit gates, to reduce the number of operations and errors.

Lattice Gauge Theories and String Dynamics in Rydberg Atom Quantum Simulators

Federica M. Surace, Paolo P. Mazza, Giuliano Giudici, Alessio Lerose, Andrea Gambassi, and Marcello Dalmonte

Phys. Rev. X 10, 021041 (2020) - Published 21 May, 2020

Recent experiments with excited cold-atom gases emulate a gauge theory that describes 1D quantum electrodynamics, insight that could help with the development of tabletop experiments for probing extreme states of matter.

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