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Achieving High Thermoelectric Performance in Rare-Earth Element-Free CaMg(2)Bi(2) with High Carrier Mobility and Ultralow Lattice Thermal Conductivity

CaMg(2)Bi(2)-based compounds, a kind of the representative compounds of Zintl phases, have uniquely inherent layered structure and hence are considered to be potential thermoelectric materials. Generally, alloying is a traditional and effective way to reduce the lattice thermal conductivity through...

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Autores principales: Guo, Muchun, Guo, Fengkai, Zhu, Jianbo, Yin, Li, Zhang, Qian, Cai, Wei, Sui, Jiehe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7396126/
https://www.ncbi.nlm.nih.gov/pubmed/32783029
http://dx.doi.org/10.34133/2020/5016564
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author Guo, Muchun
Guo, Fengkai
Zhu, Jianbo
Yin, Li
Zhang, Qian
Cai, Wei
Sui, Jiehe
author_facet Guo, Muchun
Guo, Fengkai
Zhu, Jianbo
Yin, Li
Zhang, Qian
Cai, Wei
Sui, Jiehe
author_sort Guo, Muchun
collection PubMed
description CaMg(2)Bi(2)-based compounds, a kind of the representative compounds of Zintl phases, have uniquely inherent layered structure and hence are considered to be potential thermoelectric materials. Generally, alloying is a traditional and effective way to reduce the lattice thermal conductivity through the mass and strain field fluctuation between host and guest atoms. The cation sites have very few contributions to the band structure around the fermi level; thus, cation substitution may have negligible influence on the electric transport properties. What is more, widespread application of thermoelectric materials not only desires high ZT value but also calls for low-cost and environmentally benign constituent elements. Here, Ba substitution on cation site achieves a sharp reduction in lattice thermal conductivity through enhanced point defects scattering without the obvious sacrifice of high carrier mobility, and thus improves thermoelectric properties. Then, by combining further enhanced phonon scattering caused by isoelectronic substitution of Zn on the Mg site, an extraordinarily low lattice thermal conductivity of 0.51 W m(−1) K(−1) at 873 K is achieved in (Ca(0.75)Ba(0.25))(0.995)Na(0.005)Mg(1.95)Zn(0.05)Bi(1.98) alloy, approaching the amorphous limit. Such maintenance of high mobility and realization of ultralow lattice thermal conductivity synergistically result in broadly improvement of the quality factor β. Finally, a maximum ZT of 1.25 at 873 K and the corresponding ZT(ave) up to 0.85 from 300 K to 873 K have been obtained for the same composition, meanwhile possessing temperature independent compatibility factor. To our knowledge, the current ZT(ave) exceeds all the reported values in AMg(2)Bi(2)-based compounds so far. Furthermore, the low-cost and environment-friendly characteristic plus excellent thermoelectric performance also make the present Zintl phase CaMg(2)Bi(2) more competitive in practical application.
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spelling pubmed-73961262020-08-10 Achieving High Thermoelectric Performance in Rare-Earth Element-Free CaMg(2)Bi(2) with High Carrier Mobility and Ultralow Lattice Thermal Conductivity Guo, Muchun Guo, Fengkai Zhu, Jianbo Yin, Li Zhang, Qian Cai, Wei Sui, Jiehe Research (Wash D C) Research Article CaMg(2)Bi(2)-based compounds, a kind of the representative compounds of Zintl phases, have uniquely inherent layered structure and hence are considered to be potential thermoelectric materials. Generally, alloying is a traditional and effective way to reduce the lattice thermal conductivity through the mass and strain field fluctuation between host and guest atoms. The cation sites have very few contributions to the band structure around the fermi level; thus, cation substitution may have negligible influence on the electric transport properties. What is more, widespread application of thermoelectric materials not only desires high ZT value but also calls for low-cost and environmentally benign constituent elements. Here, Ba substitution on cation site achieves a sharp reduction in lattice thermal conductivity through enhanced point defects scattering without the obvious sacrifice of high carrier mobility, and thus improves thermoelectric properties. Then, by combining further enhanced phonon scattering caused by isoelectronic substitution of Zn on the Mg site, an extraordinarily low lattice thermal conductivity of 0.51 W m(−1) K(−1) at 873 K is achieved in (Ca(0.75)Ba(0.25))(0.995)Na(0.005)Mg(1.95)Zn(0.05)Bi(1.98) alloy, approaching the amorphous limit. Such maintenance of high mobility and realization of ultralow lattice thermal conductivity synergistically result in broadly improvement of the quality factor β. Finally, a maximum ZT of 1.25 at 873 K and the corresponding ZT(ave) up to 0.85 from 300 K to 873 K have been obtained for the same composition, meanwhile possessing temperature independent compatibility factor. To our knowledge, the current ZT(ave) exceeds all the reported values in AMg(2)Bi(2)-based compounds so far. Furthermore, the low-cost and environment-friendly characteristic plus excellent thermoelectric performance also make the present Zintl phase CaMg(2)Bi(2) more competitive in practical application. AAAS 2020-07-24 /pmc/articles/PMC7396126/ /pubmed/32783029 http://dx.doi.org/10.34133/2020/5016564 Text en Copyright © 2020 Muchun Guo et al. http://creativecommons.org/licenses/by/4.0/ Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Guo, Muchun
Guo, Fengkai
Zhu, Jianbo
Yin, Li
Zhang, Qian
Cai, Wei
Sui, Jiehe
Achieving High Thermoelectric Performance in Rare-Earth Element-Free CaMg(2)Bi(2) with High Carrier Mobility and Ultralow Lattice Thermal Conductivity
title Achieving High Thermoelectric Performance in Rare-Earth Element-Free CaMg(2)Bi(2) with High Carrier Mobility and Ultralow Lattice Thermal Conductivity
title_full Achieving High Thermoelectric Performance in Rare-Earth Element-Free CaMg(2)Bi(2) with High Carrier Mobility and Ultralow Lattice Thermal Conductivity
title_fullStr Achieving High Thermoelectric Performance in Rare-Earth Element-Free CaMg(2)Bi(2) with High Carrier Mobility and Ultralow Lattice Thermal Conductivity
title_full_unstemmed Achieving High Thermoelectric Performance in Rare-Earth Element-Free CaMg(2)Bi(2) with High Carrier Mobility and Ultralow Lattice Thermal Conductivity
title_short Achieving High Thermoelectric Performance in Rare-Earth Element-Free CaMg(2)Bi(2) with High Carrier Mobility and Ultralow Lattice Thermal Conductivity
title_sort achieving high thermoelectric performance in rare-earth element-free camg(2)bi(2) with high carrier mobility and ultralow lattice thermal conductivity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7396126/
https://www.ncbi.nlm.nih.gov/pubmed/32783029
http://dx.doi.org/10.34133/2020/5016564
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