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Unparalleled selectivity and electronic structure of heterometallic [LnLn′Ln] molecules as 3-qubit quantum gates

Heterometallic lanthanide [LnLn′] coordination complexes that are accessible thermodynamically are very scarce because the metals of this series have very similar chemical behaviour. Trinuclear systems of this category have not been reported. A coordination chemistry scaffold has been shown to produ...

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Autores principales: Maniaki, Diamantoula, Garay-Ruiz, Diego, Barrios, Leoní A., Martins, Daniel O. T. A., Aguilà, David, Tuna, Floriana, Reta, Daniel, Roubeau, Olivier, Bo, Carles, Aromí, Guillem
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9116281/
https://www.ncbi.nlm.nih.gov/pubmed/35694338
http://dx.doi.org/10.1039/d2sc00436d
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author Maniaki, Diamantoula
Garay-Ruiz, Diego
Barrios, Leoní A.
Martins, Daniel O. T. A.
Aguilà, David
Tuna, Floriana
Reta, Daniel
Roubeau, Olivier
Bo, Carles
Aromí, Guillem
author_facet Maniaki, Diamantoula
Garay-Ruiz, Diego
Barrios, Leoní A.
Martins, Daniel O. T. A.
Aguilà, David
Tuna, Floriana
Reta, Daniel
Roubeau, Olivier
Bo, Carles
Aromí, Guillem
author_sort Maniaki, Diamantoula
collection PubMed
description Heterometallic lanthanide [LnLn′] coordination complexes that are accessible thermodynamically are very scarce because the metals of this series have very similar chemical behaviour. Trinuclear systems of this category have not been reported. A coordination chemistry scaffold has been shown to produce molecules of type [LnLn′Ln] of high purity, i.e. exhibiting high metal distribution ability, based on their differences in ionic radius. Through a detailed analysis of density functional theory (DFT) based calculations, we discern the energy contributions that lead to the unparalleled chemical selectivity of this molecular system. Some of the previously reported examples are compared here with the newly prepared member of this exotic list, [Er(2)Pr(LA)(2)(LB)(2)(py)(H(2)O)(2)](NO(3)) (1) (H(2)LA and H(2)LB are two β-diketone ligands). A magnetic analysis extracted from magnetization and calorimetry determinations identifies the necessary attributes for it to act as an addressable, conditional multiqubit spin-based quantum gate. Complementary ab initio calculations confirm the feasibility of these complexes as composite quantum gates, since they present well-isolated ground states with highly anisotropic and distinct g-tensors. The electronic structure of 1 has also been analyzed by EPR. Pulsed experiments have allowed the establishment of the quantum coherence of the transitions within the relevant spin states, as well as the feasibility of a coherent control of these states via nutation experiments.
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spelling pubmed-91162812022-06-10 Unparalleled selectivity and electronic structure of heterometallic [LnLn′Ln] molecules as 3-qubit quantum gates Maniaki, Diamantoula Garay-Ruiz, Diego Barrios, Leoní A. Martins, Daniel O. T. A. Aguilà, David Tuna, Floriana Reta, Daniel Roubeau, Olivier Bo, Carles Aromí, Guillem Chem Sci Chemistry Heterometallic lanthanide [LnLn′] coordination complexes that are accessible thermodynamically are very scarce because the metals of this series have very similar chemical behaviour. Trinuclear systems of this category have not been reported. A coordination chemistry scaffold has been shown to produce molecules of type [LnLn′Ln] of high purity, i.e. exhibiting high metal distribution ability, based on their differences in ionic radius. Through a detailed analysis of density functional theory (DFT) based calculations, we discern the energy contributions that lead to the unparalleled chemical selectivity of this molecular system. Some of the previously reported examples are compared here with the newly prepared member of this exotic list, [Er(2)Pr(LA)(2)(LB)(2)(py)(H(2)O)(2)](NO(3)) (1) (H(2)LA and H(2)LB are two β-diketone ligands). A magnetic analysis extracted from magnetization and calorimetry determinations identifies the necessary attributes for it to act as an addressable, conditional multiqubit spin-based quantum gate. Complementary ab initio calculations confirm the feasibility of these complexes as composite quantum gates, since they present well-isolated ground states with highly anisotropic and distinct g-tensors. The electronic structure of 1 has also been analyzed by EPR. Pulsed experiments have allowed the establishment of the quantum coherence of the transitions within the relevant spin states, as well as the feasibility of a coherent control of these states via nutation experiments. The Royal Society of Chemistry 2022-04-14 /pmc/articles/PMC9116281/ /pubmed/35694338 http://dx.doi.org/10.1039/d2sc00436d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Maniaki, Diamantoula
Garay-Ruiz, Diego
Barrios, Leoní A.
Martins, Daniel O. T. A.
Aguilà, David
Tuna, Floriana
Reta, Daniel
Roubeau, Olivier
Bo, Carles
Aromí, Guillem
Unparalleled selectivity and electronic structure of heterometallic [LnLn′Ln] molecules as 3-qubit quantum gates
title Unparalleled selectivity and electronic structure of heterometallic [LnLn′Ln] molecules as 3-qubit quantum gates
title_full Unparalleled selectivity and electronic structure of heterometallic [LnLn′Ln] molecules as 3-qubit quantum gates
title_fullStr Unparalleled selectivity and electronic structure of heterometallic [LnLn′Ln] molecules as 3-qubit quantum gates
title_full_unstemmed Unparalleled selectivity and electronic structure of heterometallic [LnLn′Ln] molecules as 3-qubit quantum gates
title_short Unparalleled selectivity and electronic structure of heterometallic [LnLn′Ln] molecules as 3-qubit quantum gates
title_sort unparalleled selectivity and electronic structure of heterometallic [lnln′ln] molecules as 3-qubit quantum gates
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9116281/
https://www.ncbi.nlm.nih.gov/pubmed/35694338
http://dx.doi.org/10.1039/d2sc00436d
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