Cargando…

Ce Filling Limit and Its Influence on Thermoelectric Performance of Fe(3)CoSb(12)-Based Skutterudite Grown by a Temperature Gradient Zone Melting Method

CoSb(3)-based skutterudite is a promising mid-temperature thermoelectric material. However, the high lattice thermal conductivity limits its further application. Filling is one of the most effective methods to reduce the lattice thermal conductivity. In this study, we investigate the Ce filling limi...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Xu-Guang, Liu, Wei-Di, Li, Shuang-Ming, Li, Dou, Zhu, Jia-Xi, Feng, Zhen-Yu, Yang, Bin, Zhong, Hong, Shi, Xiao-Lei, Chen, Zhi-Gang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8620759/
https://www.ncbi.nlm.nih.gov/pubmed/34832212
http://dx.doi.org/10.3390/ma14226810
_version_ 1784605296445882368
author Li, Xu-Guang
Liu, Wei-Di
Li, Shuang-Ming
Li, Dou
Zhu, Jia-Xi
Feng, Zhen-Yu
Yang, Bin
Zhong, Hong
Shi, Xiao-Lei
Chen, Zhi-Gang
author_facet Li, Xu-Guang
Liu, Wei-Di
Li, Shuang-Ming
Li, Dou
Zhu, Jia-Xi
Feng, Zhen-Yu
Yang, Bin
Zhong, Hong
Shi, Xiao-Lei
Chen, Zhi-Gang
author_sort Li, Xu-Guang
collection PubMed
description CoSb(3)-based skutterudite is a promising mid-temperature thermoelectric material. However, the high lattice thermal conductivity limits its further application. Filling is one of the most effective methods to reduce the lattice thermal conductivity. In this study, we investigate the Ce filling limit and its influence on thermoelectric properties of p-type Fe(3)CoSb(12)-based skutterudites grown by a temperature gradient zone melting (TGZM) method. Crystal structure and composition characterization suggests that a maximum filling fraction of Ce reaches 0.73 in a composition of Ce(0.73)Fe(2.73)Co(1.18)Sb(12) prepared by the TGZM method. The Ce filling reduces the carrier concentration to 1.03 × 10(20) cm(−3) in the Ce(1.25)Fe(3)CoSb(12), leading to an increased Seebeck coefficient. Density functional theory (DFT) calculation indicates that the Ce-filling introduces an impurity level near the Fermi level. Moreover, the rattling effect of the Ce fillers strengthens the short-wavelength phonon scattering and reduces the lattice thermal conductivity to 0.91 W m(−1) K(−1). These effects induce a maximum Seebeck coefficient of 168 μV K(−1) and a lowest κ of 1.52 W m(−1) K(−)(1) at 693 K in the Ce(1.25)Fe(3)CoSb(12), leading to a peak zT value of 0.65, which is 9 times higher than that of the unfilled Fe(3)CoSb(12).
format Online
Article
Text
id pubmed-8620759
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-86207592021-11-27 Ce Filling Limit and Its Influence on Thermoelectric Performance of Fe(3)CoSb(12)-Based Skutterudite Grown by a Temperature Gradient Zone Melting Method Li, Xu-Guang Liu, Wei-Di Li, Shuang-Ming Li, Dou Zhu, Jia-Xi Feng, Zhen-Yu Yang, Bin Zhong, Hong Shi, Xiao-Lei Chen, Zhi-Gang Materials (Basel) Article CoSb(3)-based skutterudite is a promising mid-temperature thermoelectric material. However, the high lattice thermal conductivity limits its further application. Filling is one of the most effective methods to reduce the lattice thermal conductivity. In this study, we investigate the Ce filling limit and its influence on thermoelectric properties of p-type Fe(3)CoSb(12)-based skutterudites grown by a temperature gradient zone melting (TGZM) method. Crystal structure and composition characterization suggests that a maximum filling fraction of Ce reaches 0.73 in a composition of Ce(0.73)Fe(2.73)Co(1.18)Sb(12) prepared by the TGZM method. The Ce filling reduces the carrier concentration to 1.03 × 10(20) cm(−3) in the Ce(1.25)Fe(3)CoSb(12), leading to an increased Seebeck coefficient. Density functional theory (DFT) calculation indicates that the Ce-filling introduces an impurity level near the Fermi level. Moreover, the rattling effect of the Ce fillers strengthens the short-wavelength phonon scattering and reduces the lattice thermal conductivity to 0.91 W m(−1) K(−1). These effects induce a maximum Seebeck coefficient of 168 μV K(−1) and a lowest κ of 1.52 W m(−1) K(−)(1) at 693 K in the Ce(1.25)Fe(3)CoSb(12), leading to a peak zT value of 0.65, which is 9 times higher than that of the unfilled Fe(3)CoSb(12). MDPI 2021-11-11 /pmc/articles/PMC8620759/ /pubmed/34832212 http://dx.doi.org/10.3390/ma14226810 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Xu-Guang
Liu, Wei-Di
Li, Shuang-Ming
Li, Dou
Zhu, Jia-Xi
Feng, Zhen-Yu
Yang, Bin
Zhong, Hong
Shi, Xiao-Lei
Chen, Zhi-Gang
Ce Filling Limit and Its Influence on Thermoelectric Performance of Fe(3)CoSb(12)-Based Skutterudite Grown by a Temperature Gradient Zone Melting Method
title Ce Filling Limit and Its Influence on Thermoelectric Performance of Fe(3)CoSb(12)-Based Skutterudite Grown by a Temperature Gradient Zone Melting Method
title_full Ce Filling Limit and Its Influence on Thermoelectric Performance of Fe(3)CoSb(12)-Based Skutterudite Grown by a Temperature Gradient Zone Melting Method
title_fullStr Ce Filling Limit and Its Influence on Thermoelectric Performance of Fe(3)CoSb(12)-Based Skutterudite Grown by a Temperature Gradient Zone Melting Method
title_full_unstemmed Ce Filling Limit and Its Influence on Thermoelectric Performance of Fe(3)CoSb(12)-Based Skutterudite Grown by a Temperature Gradient Zone Melting Method
title_short Ce Filling Limit and Its Influence on Thermoelectric Performance of Fe(3)CoSb(12)-Based Skutterudite Grown by a Temperature Gradient Zone Melting Method
title_sort ce filling limit and its influence on thermoelectric performance of fe(3)cosb(12)-based skutterudite grown by a temperature gradient zone melting method
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8620759/
https://www.ncbi.nlm.nih.gov/pubmed/34832212
http://dx.doi.org/10.3390/ma14226810
work_keys_str_mv AT lixuguang cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT liuweidi cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT lishuangming cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT lidou cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT zhujiaxi cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT fengzhenyu cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT yangbin cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT zhonghong cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT shixiaolei cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod
AT chenzhigang cefillinglimitanditsinfluenceonthermoelectricperformanceoffe3cosb12basedskutteruditegrownbyatemperaturegradientzonemeltingmethod