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Realizing Enhanced Thermoelectric Performance and Hardness in Icosahedral Cu 5 FeS 4− x Se x with High‐Density Twin Boundaries

Authors :
Guoyu Wang
Yang Wang
Bin Zhang
Sikang Zheng
Hengyang Wang
Xiaoyuan Zhou
Guang Han
Hong Wu
Qihong Xiong
Xu Lu
Huan Wang
Xin Xiong
Source :
Small. 18:2104592
Publication Year :
2021
Publisher :
Wiley, 2021.

Abstract

Bornite (Cu5 FeS4 ) is an Earth-abundant, nontoxic thermoelectric material. Herein, twin engineering and Se alloying are combined in order to further improve its thermoelectric performance. Cu5 FeS4-x Sex (0 ≤ x ≤ 0.4) icosahedral nanoparticles, containing high-density twin boundaries, have been synthesized by a colloidal method. Spark plasma sintering retains twin boundaries in the pellets sintered from Cu5 FeS4-x Sex colloidal powders. Thermoelectric property measurement demonstrates that alloying Se increases the carrier concentration, leading to much-improved power factor in Se-substituted Cu5 FeS4 , for example, 0.84 mW m-1 K-2 at 726 K for Cu5 FeS3.6 Se0.4 ; low lattice thermal conductivity is also achieved, due to intrinsic structural complexity, distorted crystal structure, and existing twin boundaries and point defects. As a result, a maximum zT of 0.75 is attained for Cu5 FeS3.6 Se0.4 at 726 K, which is about 23% higher than that of Cu5 FeS4 and compares favorably to that of reported Cu5 FeS4 -based materials. In addition, the Cu5 FeS4-x Sex samples containing twin boundaries also obtain improved hardness compared to the ones fabricated by melting-annealing or ball milling. This work demonstrates an effective twin engineering-composition tuning strategy toward enhanced thermoelectric and mechanical properties of Cu5 FeS4 -based materials.

Details

ISSN :
16136829 and 16136810
Volume :
18
Database :
OpenAIRE
Journal :
Small
Accession number :
edsair.doi...........e4c5ac04da984f6588a7d326f0983cb6
Full Text :
https://doi.org/10.1002/smll.202104592