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Magnetization relaxation in the single-ion magnet DySc(2)N@C(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence

Relaxation of magnetization in endohedral metallofullerenes DySc(2)N@C(80) is studied at different temperatures, in different magnetic fields, and in different molecular arrangements. Magnetization behavior and relaxation are analyzed for powder sample, and for DySc(2)N@C(80) diluted in non-magnetic...

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Autores principales: Krylov, D. S., Liu, F., Brandenburg, A., Spree, L., Bon, V., Kaskel, S., Wolter, A. U. B., Büchner, B., Avdoshenko, S. M., Popov, A. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5933001/
https://www.ncbi.nlm.nih.gov/pubmed/29671443
http://dx.doi.org/10.1039/c8cp01608a
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author Krylov, D. S.
Liu, F.
Brandenburg, A.
Spree, L.
Bon, V.
Kaskel, S.
Wolter, A. U. B.
Büchner, B.
Avdoshenko, S. M.
Popov, A. A.
author_facet Krylov, D. S.
Liu, F.
Brandenburg, A.
Spree, L.
Bon, V.
Kaskel, S.
Wolter, A. U. B.
Büchner, B.
Avdoshenko, S. M.
Popov, A. A.
author_sort Krylov, D. S.
collection PubMed
description Relaxation of magnetization in endohedral metallofullerenes DySc(2)N@C(80) is studied at different temperatures, in different magnetic fields, and in different molecular arrangements. Magnetization behavior and relaxation are analyzed for powder sample, and for DySc(2)N@C(80) diluted in non-magnetic fullerene Lu(3)N@C(80), adsorbed in voids of a metal–organic framework, and dispersed in a polymer. The magnetic field dependence and zero-field relaxation are also studied for single-crystals of DySc(2)N@C(80) co-crystallized with Ni(ii) octaethylporphyrin, as well as for the single crystal diluted with Lu(3)N@C(80). Landau–Zener theory is applied to analyze quantum tunneling of magnetization in the crystals. The field dependence of relaxation rates revealed a dramatic dependence of the zero-field tunneling resonance width on the dilution and is explained with the help of an analysis of dipolar field distributions. AC magnetometry is used then to get access to the relaxation of magnetization in a broader temperature range, from 2 to 87 K. Finally, a theoretical framework describing the spin dynamics with dissipation is proposed to study magnetization relaxation phenomena in single molecule magnets.
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spelling pubmed-59330012018-05-18 Magnetization relaxation in the single-ion magnet DySc(2)N@C(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence Krylov, D. S. Liu, F. Brandenburg, A. Spree, L. Bon, V. Kaskel, S. Wolter, A. U. B. Büchner, B. Avdoshenko, S. M. Popov, A. A. Phys Chem Chem Phys Chemistry Relaxation of magnetization in endohedral metallofullerenes DySc(2)N@C(80) is studied at different temperatures, in different magnetic fields, and in different molecular arrangements. Magnetization behavior and relaxation are analyzed for powder sample, and for DySc(2)N@C(80) diluted in non-magnetic fullerene Lu(3)N@C(80), adsorbed in voids of a metal–organic framework, and dispersed in a polymer. The magnetic field dependence and zero-field relaxation are also studied for single-crystals of DySc(2)N@C(80) co-crystallized with Ni(ii) octaethylporphyrin, as well as for the single crystal diluted with Lu(3)N@C(80). Landau–Zener theory is applied to analyze quantum tunneling of magnetization in the crystals. The field dependence of relaxation rates revealed a dramatic dependence of the zero-field tunneling resonance width on the dilution and is explained with the help of an analysis of dipolar field distributions. AC magnetometry is used then to get access to the relaxation of magnetization in a broader temperature range, from 2 to 87 K. Finally, a theoretical framework describing the spin dynamics with dissipation is proposed to study magnetization relaxation phenomena in single molecule magnets. Royal Society of Chemistry 2018-05-07 2018-04-10 /pmc/articles/PMC5933001/ /pubmed/29671443 http://dx.doi.org/10.1039/c8cp01608a Text en This journal is © The Royal Society of Chemistry 2018 http://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
Krylov, D. S.
Liu, F.
Brandenburg, A.
Spree, L.
Bon, V.
Kaskel, S.
Wolter, A. U. B.
Büchner, B.
Avdoshenko, S. M.
Popov, A. A.
Magnetization relaxation in the single-ion magnet DySc(2)N@C(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence
title Magnetization relaxation in the single-ion magnet DySc(2)N@C(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence
title_full Magnetization relaxation in the single-ion magnet DySc(2)N@C(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence
title_fullStr Magnetization relaxation in the single-ion magnet DySc(2)N@C(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence
title_full_unstemmed Magnetization relaxation in the single-ion magnet DySc(2)N@C(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence
title_short Magnetization relaxation in the single-ion magnet DySc(2)N@C(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence
title_sort magnetization relaxation in the single-ion magnet dysc(2)n@c(80): quantum tunneling, magnetic dilution, and unconventional temperature dependence
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5933001/
https://www.ncbi.nlm.nih.gov/pubmed/29671443
http://dx.doi.org/10.1039/c8cp01608a
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