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Transformation of the coordination complex [Co(C(3)S(5))(2)](2–) from a molecular magnet to a potential qubit

Mononuclear transition metal complexes demonstrate significant potential in the divergent applications of spintronics and quantum information processing. The facile tunability of these complexes enables structure function correlations for a plethora of relevant magnetic quantities. We present a seri...

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Autores principales: Fataftah, Majed S., Coste, Scott C., Vlaisavljevich, Bess, Zadrozny, Joseph M., Freedman, Danna E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6024178/
https://www.ncbi.nlm.nih.gov/pubmed/30034755
http://dx.doi.org/10.1039/c6sc02170k
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author Fataftah, Majed S.
Coste, Scott C.
Vlaisavljevich, Bess
Zadrozny, Joseph M.
Freedman, Danna E.
author_facet Fataftah, Majed S.
Coste, Scott C.
Vlaisavljevich, Bess
Zadrozny, Joseph M.
Freedman, Danna E.
author_sort Fataftah, Majed S.
collection PubMed
description Mononuclear transition metal complexes demonstrate significant potential in the divergent applications of spintronics and quantum information processing. The facile tunability of these complexes enables structure function correlations for a plethora of relevant magnetic quantities. We present a series of pseudotetrahedral [Co(C(3)S(5))(2)](2–) complexes with varying deviations from D(2d) symmetry to investigate the influence of structural distortions on spin relaxation dynamics and qubit viability, as tuned by the variable transverse magnetic anisotropy, E. To overcome the traditional challenge of measuring E in species where D ≫ E, we employed a different approach of harnessing ac magnetic susceptibility to probe the emergence of quantum tunneling of magnetization as a proxy for E. Across the range of values for E in the series, we observe magnetic hysteresis for the smallest value of E. The hysteresis disappears with increasing E, concomitant with the appearance of an observable, low frequency (L-band) electron paramagnetic resonance (EPR) signal, indicating the potential to controllably shift the molecule's utilization from classical to quantum information processing applications. The development of design principles for molecular magnet information processing requires separate design principles for classical versus quantum regimes. Here we show for the first time how subtle structural changes can switch the utility of a complex between these two types of applications.
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spelling pubmed-60241782018-07-20 Transformation of the coordination complex [Co(C(3)S(5))(2)](2–) from a molecular magnet to a potential qubit Fataftah, Majed S. Coste, Scott C. Vlaisavljevich, Bess Zadrozny, Joseph M. Freedman, Danna E. Chem Sci Chemistry Mononuclear transition metal complexes demonstrate significant potential in the divergent applications of spintronics and quantum information processing. The facile tunability of these complexes enables structure function correlations for a plethora of relevant magnetic quantities. We present a series of pseudotetrahedral [Co(C(3)S(5))(2)](2–) complexes with varying deviations from D(2d) symmetry to investigate the influence of structural distortions on spin relaxation dynamics and qubit viability, as tuned by the variable transverse magnetic anisotropy, E. To overcome the traditional challenge of measuring E in species where D ≫ E, we employed a different approach of harnessing ac magnetic susceptibility to probe the emergence of quantum tunneling of magnetization as a proxy for E. Across the range of values for E in the series, we observe magnetic hysteresis for the smallest value of E. The hysteresis disappears with increasing E, concomitant with the appearance of an observable, low frequency (L-band) electron paramagnetic resonance (EPR) signal, indicating the potential to controllably shift the molecule's utilization from classical to quantum information processing applications. The development of design principles for molecular magnet information processing requires separate design principles for classical versus quantum regimes. Here we show for the first time how subtle structural changes can switch the utility of a complex between these two types of applications. Royal Society of Chemistry 2016-09-01 2016-06-21 /pmc/articles/PMC6024178/ /pubmed/30034755 http://dx.doi.org/10.1039/c6sc02170k Text en This journal is © The Royal Society of Chemistry 2016 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Fataftah, Majed S.
Coste, Scott C.
Vlaisavljevich, Bess
Zadrozny, Joseph M.
Freedman, Danna E.
Transformation of the coordination complex [Co(C(3)S(5))(2)](2–) from a molecular magnet to a potential qubit
title Transformation of the coordination complex [Co(C(3)S(5))(2)](2–) from a molecular magnet to a potential qubit
title_full Transformation of the coordination complex [Co(C(3)S(5))(2)](2–) from a molecular magnet to a potential qubit
title_fullStr Transformation of the coordination complex [Co(C(3)S(5))(2)](2–) from a molecular magnet to a potential qubit
title_full_unstemmed Transformation of the coordination complex [Co(C(3)S(5))(2)](2–) from a molecular magnet to a potential qubit
title_short Transformation of the coordination complex [Co(C(3)S(5))(2)](2–) from a molecular magnet to a potential qubit
title_sort transformation of the coordination complex [co(c(3)s(5))(2)](2–) from a molecular magnet to a potential qubit
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6024178/
https://www.ncbi.nlm.nih.gov/pubmed/30034755
http://dx.doi.org/10.1039/c6sc02170k
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