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Large Improvement of Thermoelectric Performance by Magnetism in Co‐Based Full‐Heusler Alloys

Full‐Heusler alloys (fHAs) exhibit high mechanical strength with earth‐abundant elements, but their metallic properties tend to display small electron diffusion thermopower, limiting potential applications as excellent thermoelectric (TE) materials. Here, it is demonstrated that the Co‐based fHAs Co...

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Autores principales: Gui, Zhigang, Wang, Guiwen, Wang, Honghui, Zhang, Yuqing, Li, Yanjun, Wen, Xikai, Li, Yikang, Peng, Kunling, Zhou, Xiaoyuan, Ying, Jianjun, Chen, Xianhui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10558654/
https://www.ncbi.nlm.nih.gov/pubmed/37541665
http://dx.doi.org/10.1002/advs.202303967
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author Gui, Zhigang
Wang, Guiwen
Wang, Honghui
Zhang, Yuqing
Li, Yanjun
Wen, Xikai
Li, Yikang
Peng, Kunling
Zhou, Xiaoyuan
Ying, Jianjun
Chen, Xianhui
author_facet Gui, Zhigang
Wang, Guiwen
Wang, Honghui
Zhang, Yuqing
Li, Yanjun
Wen, Xikai
Li, Yikang
Peng, Kunling
Zhou, Xiaoyuan
Ying, Jianjun
Chen, Xianhui
author_sort Gui, Zhigang
collection PubMed
description Full‐Heusler alloys (fHAs) exhibit high mechanical strength with earth‐abundant elements, but their metallic properties tend to display small electron diffusion thermopower, limiting potential applications as excellent thermoelectric (TE) materials. Here, it is demonstrated that the Co‐based fHAs Co(2) XAl (X = Ti, V, Nb) exhibit relatively high thermoelectric performance due to spin and charge coupling. Thermopower contributions from different magnetic mechanisms, including spin fluctuation and magnon drag are extracted. A significant contribution to thermopower from magnetism compared to that from electron diffusion is demonstrated. In Co(2)TiAl, the contribution to thermopower from spin fluctuation is higher than that from electron diffusion, resulting in an increment of 280 µW m(−1) K(−2) in the power factor value. Interestingly, the thermopower contribution from magnon drag can reach up to ‐47 µV K(−1), which is over 2400% larger than the electron diffusion thermopower. The power factor of Co(2)TiAl can reach 4000 µW m(−1) K(−2) which is comparable to that of conventional semiconducting TE materials. Moreover, the corresponding figure of merit zT can reach ≈0.1 at room temperature, which is significantly larger than that of traditional metallic materials. The work shows a promising unconventional way to create and optimize TE materials by introducing magnetism.
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spelling pubmed-105586542023-10-08 Large Improvement of Thermoelectric Performance by Magnetism in Co‐Based Full‐Heusler Alloys Gui, Zhigang Wang, Guiwen Wang, Honghui Zhang, Yuqing Li, Yanjun Wen, Xikai Li, Yikang Peng, Kunling Zhou, Xiaoyuan Ying, Jianjun Chen, Xianhui Adv Sci (Weinh) Research Articles Full‐Heusler alloys (fHAs) exhibit high mechanical strength with earth‐abundant elements, but their metallic properties tend to display small electron diffusion thermopower, limiting potential applications as excellent thermoelectric (TE) materials. Here, it is demonstrated that the Co‐based fHAs Co(2) XAl (X = Ti, V, Nb) exhibit relatively high thermoelectric performance due to spin and charge coupling. Thermopower contributions from different magnetic mechanisms, including spin fluctuation and magnon drag are extracted. A significant contribution to thermopower from magnetism compared to that from electron diffusion is demonstrated. In Co(2)TiAl, the contribution to thermopower from spin fluctuation is higher than that from electron diffusion, resulting in an increment of 280 µW m(−1) K(−2) in the power factor value. Interestingly, the thermopower contribution from magnon drag can reach up to ‐47 µV K(−1), which is over 2400% larger than the electron diffusion thermopower. The power factor of Co(2)TiAl can reach 4000 µW m(−1) K(−2) which is comparable to that of conventional semiconducting TE materials. Moreover, the corresponding figure of merit zT can reach ≈0.1 at room temperature, which is significantly larger than that of traditional metallic materials. The work shows a promising unconventional way to create and optimize TE materials by introducing magnetism. John Wiley and Sons Inc. 2023-08-04 /pmc/articles/PMC10558654/ /pubmed/37541665 http://dx.doi.org/10.1002/advs.202303967 Text en © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Gui, Zhigang
Wang, Guiwen
Wang, Honghui
Zhang, Yuqing
Li, Yanjun
Wen, Xikai
Li, Yikang
Peng, Kunling
Zhou, Xiaoyuan
Ying, Jianjun
Chen, Xianhui
Large Improvement of Thermoelectric Performance by Magnetism in Co‐Based Full‐Heusler Alloys
title Large Improvement of Thermoelectric Performance by Magnetism in Co‐Based Full‐Heusler Alloys
title_full Large Improvement of Thermoelectric Performance by Magnetism in Co‐Based Full‐Heusler Alloys
title_fullStr Large Improvement of Thermoelectric Performance by Magnetism in Co‐Based Full‐Heusler Alloys
title_full_unstemmed Large Improvement of Thermoelectric Performance by Magnetism in Co‐Based Full‐Heusler Alloys
title_short Large Improvement of Thermoelectric Performance by Magnetism in Co‐Based Full‐Heusler Alloys
title_sort large improvement of thermoelectric performance by magnetism in co‐based full‐heusler alloys
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10558654/
https://www.ncbi.nlm.nih.gov/pubmed/37541665
http://dx.doi.org/10.1002/advs.202303967
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