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Two-step phase manipulation by tailoring chemical bonds results in high-performance GeSe thermoelectrics

In thermoelectrics, phase engineering serves a crucial function in determining the power factor by affecting the band degeneracy. However, for low-symmetry compounds, the mainstream one-step phase manipulation strategy, depending solely on the valley or orbital degeneracy, is inadequate to attain a...

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Autores principales: Yao, Wenqing, Zhang, Yihua, Lyu, Tu, Huang, Weibo, Huang, Nuoxian, Li, Xiang, Zhang, Chaohua, Liu, Fusheng, Wuttig, Matthias, Yu, Yuan, Hong, Min, Hu, Lipeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10616397/
https://www.ncbi.nlm.nih.gov/pubmed/37915362
http://dx.doi.org/10.1016/j.xinn.2023.100522
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author Yao, Wenqing
Zhang, Yihua
Lyu, Tu
Huang, Weibo
Huang, Nuoxian
Li, Xiang
Zhang, Chaohua
Liu, Fusheng
Wuttig, Matthias
Yu, Yuan
Hong, Min
Hu, Lipeng
author_facet Yao, Wenqing
Zhang, Yihua
Lyu, Tu
Huang, Weibo
Huang, Nuoxian
Li, Xiang
Zhang, Chaohua
Liu, Fusheng
Wuttig, Matthias
Yu, Yuan
Hong, Min
Hu, Lipeng
author_sort Yao, Wenqing
collection PubMed
description In thermoelectrics, phase engineering serves a crucial function in determining the power factor by affecting the band degeneracy. However, for low-symmetry compounds, the mainstream one-step phase manipulation strategy, depending solely on the valley or orbital degeneracy, is inadequate to attain a high density-of-states effective mass and exceptional zT. Here, we employ a distinctive two-step phase manipulation strategy through stepwise tailoring chemical bonds in GeSe. Initially, we amplify the valley degeneracy via CdTe alloying, which elevates the crystal symmetry from a covalently bonded orthorhombic to a metavalently bonded rhombohedral phase by significantly suppressing the Peierls distortion. Subsequently, we incorporate Pb to trigger the convergence of multivalence bands and further enhance the density-of-states effective mass by moderately restraining the Peierls distortion. Additionally, the atypical metavalent bonding in rhombohedral GeSe enables a high Ge vacancy concentration and a small band effective mass, leading to increased carrier concentration and mobility. This weak chemical bond along with strong lattice anharmonicity also reduces lattice thermal conductivity. Consequently, this unique property ensemble contributes to an outstanding zT of 0.9 at 773 K for Ge(0.80)Pb(0.20)Se(CdTe)(0.25). This work underscores the pivotal role of the two-step phase manipulation by stepwise tailoring of chemical bonds in improving the thermoelectric performance of p-bonded chalcogenides.
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spelling pubmed-106163972023-11-01 Two-step phase manipulation by tailoring chemical bonds results in high-performance GeSe thermoelectrics Yao, Wenqing Zhang, Yihua Lyu, Tu Huang, Weibo Huang, Nuoxian Li, Xiang Zhang, Chaohua Liu, Fusheng Wuttig, Matthias Yu, Yuan Hong, Min Hu, Lipeng Innovation (Camb) Article In thermoelectrics, phase engineering serves a crucial function in determining the power factor by affecting the band degeneracy. However, for low-symmetry compounds, the mainstream one-step phase manipulation strategy, depending solely on the valley or orbital degeneracy, is inadequate to attain a high density-of-states effective mass and exceptional zT. Here, we employ a distinctive two-step phase manipulation strategy through stepwise tailoring chemical bonds in GeSe. Initially, we amplify the valley degeneracy via CdTe alloying, which elevates the crystal symmetry from a covalently bonded orthorhombic to a metavalently bonded rhombohedral phase by significantly suppressing the Peierls distortion. Subsequently, we incorporate Pb to trigger the convergence of multivalence bands and further enhance the density-of-states effective mass by moderately restraining the Peierls distortion. Additionally, the atypical metavalent bonding in rhombohedral GeSe enables a high Ge vacancy concentration and a small band effective mass, leading to increased carrier concentration and mobility. This weak chemical bond along with strong lattice anharmonicity also reduces lattice thermal conductivity. Consequently, this unique property ensemble contributes to an outstanding zT of 0.9 at 773 K for Ge(0.80)Pb(0.20)Se(CdTe)(0.25). This work underscores the pivotal role of the two-step phase manipulation by stepwise tailoring of chemical bonds in improving the thermoelectric performance of p-bonded chalcogenides. Elsevier 2023-10-06 /pmc/articles/PMC10616397/ /pubmed/37915362 http://dx.doi.org/10.1016/j.xinn.2023.100522 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Yao, Wenqing
Zhang, Yihua
Lyu, Tu
Huang, Weibo
Huang, Nuoxian
Li, Xiang
Zhang, Chaohua
Liu, Fusheng
Wuttig, Matthias
Yu, Yuan
Hong, Min
Hu, Lipeng
Two-step phase manipulation by tailoring chemical bonds results in high-performance GeSe thermoelectrics
title Two-step phase manipulation by tailoring chemical bonds results in high-performance GeSe thermoelectrics
title_full Two-step phase manipulation by tailoring chemical bonds results in high-performance GeSe thermoelectrics
title_fullStr Two-step phase manipulation by tailoring chemical bonds results in high-performance GeSe thermoelectrics
title_full_unstemmed Two-step phase manipulation by tailoring chemical bonds results in high-performance GeSe thermoelectrics
title_short Two-step phase manipulation by tailoring chemical bonds results in high-performance GeSe thermoelectrics
title_sort two-step phase manipulation by tailoring chemical bonds results in high-performance gese thermoelectrics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10616397/
https://www.ncbi.nlm.nih.gov/pubmed/37915362
http://dx.doi.org/10.1016/j.xinn.2023.100522
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