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Citation
Tags
HERO ID
7057024
Reference Type
Journal Article
Title
Enhancing thermoelectric performance of SnTe via stepwisely optimizing electrical and thermal transport properties
Author(s)
Wang, D; Shao, J; Zhao, LiD; Zhang, X; Yu, Y; Xie, Lin; Wang, J; Wang, G; He, J; Zhou, Y; Pang, Q; ,
Year
2019
Is Peer Reviewed?
Yes
Journal
Journal of Alloys and Compounds
ISSN:
0925-8388
Publisher
ELSEVIER SCIENCE SA
Location
LAUSANNE
Page Numbers
571-584
DOI
10.1016/j.jallcom.2018.09.234
Web of Science Id
WOS:000449741200065
Abstract
In this work, we report that the high performance of SnTe could be realized by enhancing electrical transport properties (power factor) and reducing thermal conductivity through stepwisely introducing elements of Sb, In and Se. We found that Sb and In co-doping can enhance Seebeck coefficients in the broad temperature range via optimizing carrier density and introducing resonant state, respectively. Moreover, nanostructures could be formed when the Sb content beyond the solubility limit in SnTe matrix, which coupled with point defects from In and Se alloying result in a very low (lattice) thermal conductivity through the enhanced phonon scattering from defects and grain boundaries. A peak ZT similar to 1.0 at 923 K can be achieved with the enhanced power factor and reduced thermal conductivity. Accordingly, the average ZT value increases from similar to 0.20 for undoped SnTe to similar to 0.60 for multiple-doped SnTe (Sn0.823Sb0.17In0.007Te0.98Se0.02) over 300-923 K, generating a high calculated conversion efficiency similar to 11%. Present results indicate the high performance of SnTe can be obtained through stepwisely optimizing strategy in both electrical and thermal transport properties. (C) 2018 Elsevier B.V. All rights reserved.
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