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Quantum computing with graphene plasmons

delete2019-05-02
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OA
AI
I
Irati Alonso Calafell *
J
Joel D. Cox
M
Milan Radonjić
J
J. R. M. Saavedra
F
F. Javier Garcı́a de Abajo
L
Lee A. Rozema
P
Philip Walther
DOI:10.1038/s41534-019-0150-2delete
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Abstract

Abstract

En 中文
Among the various approaches to quantum computing, all-optical architectures are especially promising due to the robustness and mobility of single photons. However, the creation of the two-photon quantum logic gates required for universal quantum computing remains a challenge. Here we propose a universal two-qubit quantum logic gate, where qubits are encoded in surface plasmons in graphene nanostructures, that exploits graphene's strong third-order nonlinearity and long plasmon lifetimes to enable single-photon-level interactions. In particular, we utilize strong two-plasmon absorption in graphene nanoribbons, which can greatly exceed single-plasmon absorption to create a square-root-of-swap that is protected by the quantum Zeno effect against evolution into undesired failure modes. Our gate does not require any cryogenic or vacuum technology, has a footprint of a few hundred nanometers, and reaches fidelities and success rates well above the fault-tolerance threshold, suggesting that graphene plasmonics offers a route towards scalable quantum technologies.
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Journal

npj Quantum Information cover
npj Quantum Information
IF:
8.3
Papers:
1.4K
Citations:
8.1K

Organization

B
barcelona institute of science & technology
Scholars:
1.2W
Papers: 9.7K
Citations: 36
U
University of Vienna
Scholars:
1.7W
Papers: 1.6W
Citations: 40
Cited Papers

Cited Papers

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Hybrid Surface-Phonon-Plasmon Polariton Modes in Graphene/Monolayer h-BN Heterostructures
err2014-06-03
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Quantum plasmonics
err2013-06-03
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errTame, M. S.; McEnery, K. R.; Oezdemir, S. K.; Lee, J.; Maier, S. A.; Kim, M. S.
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