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Targeting molecular quantum memory with embedded error correction

The implementation of a quantum computer requires both to protect information from environmental noise and to implement quantum operations efficiently. Achieving this by a fully fault-tolerant platform, in which quantum gates are implemented within quantum-error corrected units, poses stringent requ...

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Autores principales: Lockyer, Selena J., Chiesa, Alessandro, Timco, Grigore A., McInnes, Eric J. L., Bennett, Tom S., Vitorica-Yrezebal, Inigo J., Carretta, Stefano, Winpenny, Richard E. P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8261727/
https://www.ncbi.nlm.nih.gov/pubmed/34276940
http://dx.doi.org/10.1039/d1sc01506k
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author Lockyer, Selena J.
Chiesa, Alessandro
Timco, Grigore A.
McInnes, Eric J. L.
Bennett, Tom S.
Vitorica-Yrezebal, Inigo J.
Carretta, Stefano
Winpenny, Richard E. P.
author_facet Lockyer, Selena J.
Chiesa, Alessandro
Timco, Grigore A.
McInnes, Eric J. L.
Bennett, Tom S.
Vitorica-Yrezebal, Inigo J.
Carretta, Stefano
Winpenny, Richard E. P.
author_sort Lockyer, Selena J.
collection PubMed
description The implementation of a quantum computer requires both to protect information from environmental noise and to implement quantum operations efficiently. Achieving this by a fully fault-tolerant platform, in which quantum gates are implemented within quantum-error corrected units, poses stringent requirements on the coherence and control of such hardware. A more feasible architecture could consist of connected memories, that support error-correction by enhancing coherence, and processing units, that ensure fast manipulations. We present here a supramolecular {Cr(7)Ni}–Cu system which could form the elementary unit of this platform, where the electronic spin 1/2 of {Cr(7)Ni} provides the processor and the naturally isolated nuclear spin 3/2 of the Cu ion is used to encode a logical unit with embedded quantum error-correction. We demonstrate by realistic simulations that microwave pulses allow us to rapidly implement gates on the processor and to swap information between the processor and the quantum memory. By combining the storage into the Cu nuclear spin with quantum error correction, information can be protected for times much longer than the processor coherence.
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spelling pubmed-82617272021-07-16 Targeting molecular quantum memory with embedded error correction Lockyer, Selena J. Chiesa, Alessandro Timco, Grigore A. McInnes, Eric J. L. Bennett, Tom S. Vitorica-Yrezebal, Inigo J. Carretta, Stefano Winpenny, Richard E. P. Chem Sci Chemistry The implementation of a quantum computer requires both to protect information from environmental noise and to implement quantum operations efficiently. Achieving this by a fully fault-tolerant platform, in which quantum gates are implemented within quantum-error corrected units, poses stringent requirements on the coherence and control of such hardware. A more feasible architecture could consist of connected memories, that support error-correction by enhancing coherence, and processing units, that ensure fast manipulations. We present here a supramolecular {Cr(7)Ni}–Cu system which could form the elementary unit of this platform, where the electronic spin 1/2 of {Cr(7)Ni} provides the processor and the naturally isolated nuclear spin 3/2 of the Cu ion is used to encode a logical unit with embedded quantum error-correction. We demonstrate by realistic simulations that microwave pulses allow us to rapidly implement gates on the processor and to swap information between the processor and the quantum memory. By combining the storage into the Cu nuclear spin with quantum error correction, information can be protected for times much longer than the processor coherence. The Royal Society of Chemistry 2021-06-02 /pmc/articles/PMC8261727/ /pubmed/34276940 http://dx.doi.org/10.1039/d1sc01506k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Lockyer, Selena J.
Chiesa, Alessandro
Timco, Grigore A.
McInnes, Eric J. L.
Bennett, Tom S.
Vitorica-Yrezebal, Inigo J.
Carretta, Stefano
Winpenny, Richard E. P.
Targeting molecular quantum memory with embedded error correction
title Targeting molecular quantum memory with embedded error correction
title_full Targeting molecular quantum memory with embedded error correction
title_fullStr Targeting molecular quantum memory with embedded error correction
title_full_unstemmed Targeting molecular quantum memory with embedded error correction
title_short Targeting molecular quantum memory with embedded error correction
title_sort targeting molecular quantum memory with embedded error correction
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8261727/
https://www.ncbi.nlm.nih.gov/pubmed/34276940
http://dx.doi.org/10.1039/d1sc01506k
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