A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One Minute

Spins associated with single defects in solids provide promising qubits for quantum-information processing and quantum networks. Recent experiments have demonstrated long coherence times, high-fidelity operations, and long-range entanglement. However, control has so far been limited to a few qubits,...

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Main Authors: C. E. Bradley, J. Randall, M. H. Abobeih, R. C. Berrevoets, M. J. Degen, M. A. Bakker, M. Markham, D. J. Twitchen, T. H. Taminiau
Format: Article
Language:English
Published: American Physical Society 2019-09-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.9.031045
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spelling doaj-21b96e8240a4448fb6a0c55aea459b642020-11-25T02:15:22ZengAmerican Physical SocietyPhysical Review X2160-33082019-09-019303104510.1103/PhysRevX.9.031045A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One MinuteC. E. BradleyJ. RandallM. H. AbobeihR. C. BerrevoetsM. J. DegenM. A. BakkerM. MarkhamD. J. TwitchenT. H. TaminiauSpins associated with single defects in solids provide promising qubits for quantum-information processing and quantum networks. Recent experiments have demonstrated long coherence times, high-fidelity operations, and long-range entanglement. However, control has so far been limited to a few qubits, with entangled states of three spins demonstrated. Realizing larger multiqubit registers is challenging due to the need for quantum gates that avoid cross talk and protect the coherence of the complete register. In this paper, we present novel decoherence-protected gates that combine dynamical decoupling of an electron spin with selective phase-controlled driving of nuclear spins. We use these gates to realize a ten-qubit quantum register consisting of the electron spin of a nitrogen-vacancy center and nine nuclear spins in diamond. We show that the register is fully connected by generating entanglement between all 45 possible qubit pairs and realize genuine multipartite entangled states with up to seven qubits. Finally, we investigate the register as a multiqubit memory. We demonstrate the protection of an arbitrary single-qubit state for over 75 s—the longest reported for a single solid-state qubit—and show that two-qubit entanglement can be preserved for over 10 s. Our results enable the control of large quantum registers with long coherence times and therefore open the door to advanced quantum algorithms and quantum networks with solid-state spin qubits.http://doi.org/10.1103/PhysRevX.9.031045
collection DOAJ
language English
format Article
sources DOAJ
author C. E. Bradley
J. Randall
M. H. Abobeih
R. C. Berrevoets
M. J. Degen
M. A. Bakker
M. Markham
D. J. Twitchen
T. H. Taminiau
spellingShingle C. E. Bradley
J. Randall
M. H. Abobeih
R. C. Berrevoets
M. J. Degen
M. A. Bakker
M. Markham
D. J. Twitchen
T. H. Taminiau
A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One Minute
Physical Review X
author_facet C. E. Bradley
J. Randall
M. H. Abobeih
R. C. Berrevoets
M. J. Degen
M. A. Bakker
M. Markham
D. J. Twitchen
T. H. Taminiau
author_sort C. E. Bradley
title A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One Minute
title_short A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One Minute
title_full A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One Minute
title_fullStr A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One Minute
title_full_unstemmed A Ten-Qubit Solid-State Spin Register with Quantum Memory up to One Minute
title_sort ten-qubit solid-state spin register with quantum memory up to one minute
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2019-09-01
description Spins associated with single defects in solids provide promising qubits for quantum-information processing and quantum networks. Recent experiments have demonstrated long coherence times, high-fidelity operations, and long-range entanglement. However, control has so far been limited to a few qubits, with entangled states of three spins demonstrated. Realizing larger multiqubit registers is challenging due to the need for quantum gates that avoid cross talk and protect the coherence of the complete register. In this paper, we present novel decoherence-protected gates that combine dynamical decoupling of an electron spin with selective phase-controlled driving of nuclear spins. We use these gates to realize a ten-qubit quantum register consisting of the electron spin of a nitrogen-vacancy center and nine nuclear spins in diamond. We show that the register is fully connected by generating entanglement between all 45 possible qubit pairs and realize genuine multipartite entangled states with up to seven qubits. Finally, we investigate the register as a multiqubit memory. We demonstrate the protection of an arbitrary single-qubit state for over 75 s—the longest reported for a single solid-state qubit—and show that two-qubit entanglement can be preserved for over 10 s. Our results enable the control of large quantum registers with long coherence times and therefore open the door to advanced quantum algorithms and quantum networks with solid-state spin qubits.
url http://doi.org/10.1103/PhysRevX.9.031045
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