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Quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits

Electronic spins in different environments are currently investigated as potential qubits, i.e. the logic units of quantum computers. These have to retain memory of their quantum state for a sufficiently long time (phase memory time, T(m)) allowing quantum operations to be performed. For molecular b...

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Autores principales: Tesi, Lorenzo, Lucaccini, Eva, Cimatti, Irene, Perfetti, Mauro, Mannini, Matteo, Atzori, Matteo, Morra, Elena, Chiesa, Mario, Caneschi, Andrea, Sorace, Lorenzo, Sessoli, Roberta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5968563/
https://www.ncbi.nlm.nih.gov/pubmed/29899933
http://dx.doi.org/10.1039/c5sc04295j
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author Tesi, Lorenzo
Lucaccini, Eva
Cimatti, Irene
Perfetti, Mauro
Mannini, Matteo
Atzori, Matteo
Morra, Elena
Chiesa, Mario
Caneschi, Andrea
Sorace, Lorenzo
Sessoli, Roberta
author_facet Tesi, Lorenzo
Lucaccini, Eva
Cimatti, Irene
Perfetti, Mauro
Mannini, Matteo
Atzori, Matteo
Morra, Elena
Chiesa, Mario
Caneschi, Andrea
Sorace, Lorenzo
Sessoli, Roberta
author_sort Tesi, Lorenzo
collection PubMed
description Electronic spins in different environments are currently investigated as potential qubits, i.e. the logic units of quantum computers. These have to retain memory of their quantum state for a sufficiently long time (phase memory time, T(m)) allowing quantum operations to be performed. For molecular based spin qubits, strategies to increase phase coherence by removing nuclear spins are rather well developed, but it is now crucial to address the problem of the rapid increase of the spin–lattice relaxation rate, T(1)(–1), with increasing temperature that hampers their use at room-temperature. Herein, thanks to the combination of pulsed EPR spectroscopy and AC susceptometry we evidence that an evaporable vanadyl complex of formula VO(dpm)(2), where dpm(–) is the anion of dipivaloylmethane, presents a combination of very promising features for potential application as molecular spin-qubit. The spin–lattice relaxation time, T(1), studied in detail through AC susceptometry, decreases slowly with increasing temperature and, more surprisingly, it is not accelerated by the application of an external field up to several Teslas. State-of-the art phase memory times for molecular spin systems in protiated environment are detected by pulsed EPR also in moderate dilution, with values of 2.7 μs at 5 K and 2.1 μs at 80 K. Low temperature scanning tunnel microscopy and X-ray photoelectron spectroscopy in situ investigations reveal that intact molecules sublimated in ultra-high vacuum spontaneously form an ordered monolayer on Au(111), opening the perspective of electric access to the quantum memory of ensembles of spin qubits that can be scaled down to the single molecule.
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spelling pubmed-59685632018-06-13 Quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits Tesi, Lorenzo Lucaccini, Eva Cimatti, Irene Perfetti, Mauro Mannini, Matteo Atzori, Matteo Morra, Elena Chiesa, Mario Caneschi, Andrea Sorace, Lorenzo Sessoli, Roberta Chem Sci Chemistry Electronic spins in different environments are currently investigated as potential qubits, i.e. the logic units of quantum computers. These have to retain memory of their quantum state for a sufficiently long time (phase memory time, T(m)) allowing quantum operations to be performed. For molecular based spin qubits, strategies to increase phase coherence by removing nuclear spins are rather well developed, but it is now crucial to address the problem of the rapid increase of the spin–lattice relaxation rate, T(1)(–1), with increasing temperature that hampers their use at room-temperature. Herein, thanks to the combination of pulsed EPR spectroscopy and AC susceptometry we evidence that an evaporable vanadyl complex of formula VO(dpm)(2), where dpm(–) is the anion of dipivaloylmethane, presents a combination of very promising features for potential application as molecular spin-qubit. The spin–lattice relaxation time, T(1), studied in detail through AC susceptometry, decreases slowly with increasing temperature and, more surprisingly, it is not accelerated by the application of an external field up to several Teslas. State-of-the art phase memory times for molecular spin systems in protiated environment are detected by pulsed EPR also in moderate dilution, with values of 2.7 μs at 5 K and 2.1 μs at 80 K. Low temperature scanning tunnel microscopy and X-ray photoelectron spectroscopy in situ investigations reveal that intact molecules sublimated in ultra-high vacuum spontaneously form an ordered monolayer on Au(111), opening the perspective of electric access to the quantum memory of ensembles of spin qubits that can be scaled down to the single molecule. Royal Society of Chemistry 2016-03-01 2015-12-11 /pmc/articles/PMC5968563/ /pubmed/29899933 http://dx.doi.org/10.1039/c5sc04295j Text en This journal is © The Royal Society of Chemistry 2016 https://creativecommons.org/licenses/by/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Tesi, Lorenzo
Lucaccini, Eva
Cimatti, Irene
Perfetti, Mauro
Mannini, Matteo
Atzori, Matteo
Morra, Elena
Chiesa, Mario
Caneschi, Andrea
Sorace, Lorenzo
Sessoli, Roberta
Quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits
title Quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits
title_full Quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits
title_fullStr Quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits
title_full_unstemmed Quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits
title_short Quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits
title_sort quantum coherence in a processable vanadyl complex: new tools for the search of molecular spin qubits
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5968563/
https://www.ncbi.nlm.nih.gov/pubmed/29899933
http://dx.doi.org/10.1039/c5sc04295j
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