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Strong Axiality in a Dysprosium(III) Bis(borolide) Complex Leads to Magnetic Blocking at 65 K

[Image: see text] Substituted dysprosocenium complexes of the type [Dy(Cp(R))(2)](+) exhibit slow magnetic relaxation at cryogenic temperatures and have emerged as top-performing single-molecule magnets. The remarkable properties of these compounds derive in part from the strong axial ligand field a...

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Autores principales: Vincent, Alexandre H., Whyatt, Yasmin L., Chilton, Nicholas F., Long, Jeffrey R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9923674/
https://www.ncbi.nlm.nih.gov/pubmed/36629382
http://dx.doi.org/10.1021/jacs.2c08568
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author Vincent, Alexandre H.
Whyatt, Yasmin L.
Chilton, Nicholas F.
Long, Jeffrey R.
author_facet Vincent, Alexandre H.
Whyatt, Yasmin L.
Chilton, Nicholas F.
Long, Jeffrey R.
author_sort Vincent, Alexandre H.
collection PubMed
description [Image: see text] Substituted dysprosocenium complexes of the type [Dy(Cp(R))(2)](+) exhibit slow magnetic relaxation at cryogenic temperatures and have emerged as top-performing single-molecule magnets. The remarkable properties of these compounds derive in part from the strong axial ligand field afforded by the cyclopentadiene anions, and the design of analogous compounds with even stronger ligand fields is one promising route toward identifying new single-molecule magnets that retain a magnetic memory at even higher temperatures. Here, we report the synthesis and characterization of a dysprosium bis(borolide) compound, [K(18-crown-6)][Dy(BC(4)Ph(5))(2)] (1), featuring the dysprosocenate anion [Dy(BC(4)Ph(5))(2)](−) with a pseudoaxial coordination environment afforded by two dianionic pentaphenyl borolide ligands. Variable-field magnetization data reveal open magnetic hysteresis up to 66 K, establishing 1 as a top-performing single-molecule magnet among its dysprosocenium analogues. Ac magnetic susceptibility data indicate that 1 relaxes via an Orbach mechanism above ∼80 K with U(eff) = 1500(100) cm(–1) and τ(0) = 10(–12.0(9)) s, whereas Raman relaxation and quantum tunneling of the magnetization dominate at lower temperatures. Compound 1 exhibits a 100 s blocking temperature of 65 K, among the highest reported for dysprosium-based single-molecule magnets. Ab initio spin dynamics calculations support the experimental U(eff) and τ(0) values and enable a quantitative comparison of the relaxation dynamics of 1 and two representative dysprosocenium cations, yielding additional insights into the impact of the crystal field splitting and vibronic coupling on the observed relaxation behavior. Importantly, compound 1 represents a step toward the development of alternatives to substituted dysprosocenium single-molecule magnets with increased axiality.
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spelling pubmed-99236742023-02-14 Strong Axiality in a Dysprosium(III) Bis(borolide) Complex Leads to Magnetic Blocking at 65 K Vincent, Alexandre H. Whyatt, Yasmin L. Chilton, Nicholas F. Long, Jeffrey R. J Am Chem Soc [Image: see text] Substituted dysprosocenium complexes of the type [Dy(Cp(R))(2)](+) exhibit slow magnetic relaxation at cryogenic temperatures and have emerged as top-performing single-molecule magnets. The remarkable properties of these compounds derive in part from the strong axial ligand field afforded by the cyclopentadiene anions, and the design of analogous compounds with even stronger ligand fields is one promising route toward identifying new single-molecule magnets that retain a magnetic memory at even higher temperatures. Here, we report the synthesis and characterization of a dysprosium bis(borolide) compound, [K(18-crown-6)][Dy(BC(4)Ph(5))(2)] (1), featuring the dysprosocenate anion [Dy(BC(4)Ph(5))(2)](−) with a pseudoaxial coordination environment afforded by two dianionic pentaphenyl borolide ligands. Variable-field magnetization data reveal open magnetic hysteresis up to 66 K, establishing 1 as a top-performing single-molecule magnet among its dysprosocenium analogues. Ac magnetic susceptibility data indicate that 1 relaxes via an Orbach mechanism above ∼80 K with U(eff) = 1500(100) cm(–1) and τ(0) = 10(–12.0(9)) s, whereas Raman relaxation and quantum tunneling of the magnetization dominate at lower temperatures. Compound 1 exhibits a 100 s blocking temperature of 65 K, among the highest reported for dysprosium-based single-molecule magnets. Ab initio spin dynamics calculations support the experimental U(eff) and τ(0) values and enable a quantitative comparison of the relaxation dynamics of 1 and two representative dysprosocenium cations, yielding additional insights into the impact of the crystal field splitting and vibronic coupling on the observed relaxation behavior. Importantly, compound 1 represents a step toward the development of alternatives to substituted dysprosocenium single-molecule magnets with increased axiality. American Chemical Society 2023-01-11 /pmc/articles/PMC9923674/ /pubmed/36629382 http://dx.doi.org/10.1021/jacs.2c08568 Text en © 2023 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Vincent, Alexandre H.
Whyatt, Yasmin L.
Chilton, Nicholas F.
Long, Jeffrey R.
Strong Axiality in a Dysprosium(III) Bis(borolide) Complex Leads to Magnetic Blocking at 65 K
title Strong Axiality in a Dysprosium(III) Bis(borolide) Complex Leads to Magnetic Blocking at 65 K
title_full Strong Axiality in a Dysprosium(III) Bis(borolide) Complex Leads to Magnetic Blocking at 65 K
title_fullStr Strong Axiality in a Dysprosium(III) Bis(borolide) Complex Leads to Magnetic Blocking at 65 K
title_full_unstemmed Strong Axiality in a Dysprosium(III) Bis(borolide) Complex Leads to Magnetic Blocking at 65 K
title_short Strong Axiality in a Dysprosium(III) Bis(borolide) Complex Leads to Magnetic Blocking at 65 K
title_sort strong axiality in a dysprosium(iii) bis(borolide) complex leads to magnetic blocking at 65 k
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9923674/
https://www.ncbi.nlm.nih.gov/pubmed/36629382
http://dx.doi.org/10.1021/jacs.2c08568
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