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Localised Ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric AgCrSe(2)

In materials science, the substructure approach consists in imagining complex materials in which a particular property is associated with a distinct structural feature, so as to combine different chosen physical characteristics, which otherwise have little chance to coexist. Applied to thermoelectri...

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Autores principales: Damay, F., Petit, S., Rols, S., Braendlein, M., Daou, R., Elkaïm, E., Fauth, F., Gascoin, F., Martin, C., Maignan, A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4802330/
https://www.ncbi.nlm.nih.gov/pubmed/27000414
http://dx.doi.org/10.1038/srep23415
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author Damay, F.
Petit, S.
Rols, S.
Braendlein, M.
Daou, R.
Elkaïm, E.
Fauth, F.
Gascoin, F.
Martin, C.
Maignan, A.
author_facet Damay, F.
Petit, S.
Rols, S.
Braendlein, M.
Daou, R.
Elkaïm, E.
Fauth, F.
Gascoin, F.
Martin, C.
Maignan, A.
author_sort Damay, F.
collection PubMed
description In materials science, the substructure approach consists in imagining complex materials in which a particular property is associated with a distinct structural feature, so as to combine different chosen physical characteristics, which otherwise have little chance to coexist. Applied to thermoelectric materials, it has been used to achieve simultaneously phonon-glass and electron-crystal properties. Mostly studied for its superionic conductivity, AgCrSe(2) is a naturally layered compound, which achieves very low thermal conductivity, ~0.4 W.K(−1).m(−1) at RT (room temperature), and is considered a promising thermoelectric. The Cr atoms of the [CrSe(2)](∞) layer bear a spin S = 3/2, which orders below T(N) = 55 K. Here we report low temperature inelastic neutron scattering experiments on AgCrSe(2), alongside the magnetic field evolution of its thermal and electrical transport. We observe a very low frequency mode at 3 meV, ascribed to large anharmonic displacements of the Ag(+) ions in the [Ag](∞) layer, and 2D magnetic fluctuations up to 3 T(N) in the chromium layer. The low thermal conductivity of AgCrSe(2) is attributed to acoustic phonon scattering by a regular lattice of Ag(+) oscillating in quasi-2D potential wells. These findings highlight a new way to achieve localised phonon modes in a perfectly crystalline solid.
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spelling pubmed-48023302016-03-23 Localised Ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric AgCrSe(2) Damay, F. Petit, S. Rols, S. Braendlein, M. Daou, R. Elkaïm, E. Fauth, F. Gascoin, F. Martin, C. Maignan, A. Sci Rep Article In materials science, the substructure approach consists in imagining complex materials in which a particular property is associated with a distinct structural feature, so as to combine different chosen physical characteristics, which otherwise have little chance to coexist. Applied to thermoelectric materials, it has been used to achieve simultaneously phonon-glass and electron-crystal properties. Mostly studied for its superionic conductivity, AgCrSe(2) is a naturally layered compound, which achieves very low thermal conductivity, ~0.4 W.K(−1).m(−1) at RT (room temperature), and is considered a promising thermoelectric. The Cr atoms of the [CrSe(2)](∞) layer bear a spin S = 3/2, which orders below T(N) = 55 K. Here we report low temperature inelastic neutron scattering experiments on AgCrSe(2), alongside the magnetic field evolution of its thermal and electrical transport. We observe a very low frequency mode at 3 meV, ascribed to large anharmonic displacements of the Ag(+) ions in the [Ag](∞) layer, and 2D magnetic fluctuations up to 3 T(N) in the chromium layer. The low thermal conductivity of AgCrSe(2) is attributed to acoustic phonon scattering by a regular lattice of Ag(+) oscillating in quasi-2D potential wells. These findings highlight a new way to achieve localised phonon modes in a perfectly crystalline solid. Nature Publishing Group 2016-03-22 /pmc/articles/PMC4802330/ /pubmed/27000414 http://dx.doi.org/10.1038/srep23415 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Damay, F.
Petit, S.
Rols, S.
Braendlein, M.
Daou, R.
Elkaïm, E.
Fauth, F.
Gascoin, F.
Martin, C.
Maignan, A.
Localised Ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric AgCrSe(2)
title Localised Ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric AgCrSe(2)
title_full Localised Ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric AgCrSe(2)
title_fullStr Localised Ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric AgCrSe(2)
title_full_unstemmed Localised Ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric AgCrSe(2)
title_short Localised Ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric AgCrSe(2)
title_sort localised ag(+) vibrations at the origin of ultralow thermal conductivity in layered thermoelectric agcrse(2)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4802330/
https://www.ncbi.nlm.nih.gov/pubmed/27000414
http://dx.doi.org/10.1038/srep23415
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