Leveraging room-temperature plastic deformation for tailoring inorganic thermoelectrics

Mg 3 (Sb, Bi) 2 has emerged as a promising material due to its favorable combination of high thermoelectric performance and ductility. However, a key question remains regarding how plastic deformation affects its thermoelectric properties. Here we investigate the evolution of deformation-induced defects and their influence on the transport and mechanical properties of Mg 3 (Sb, Bi) 2 . Compressive deformation introduces high densities of dislocations and deformation twins, accompanied by a pronounced deterioration in electrical properties near room temperature. After annealing, the thermoelectric properties can be largely restored to their initial values as the dislocation density decreases substantially, whereas the twin fraction remains nearly unchanged. These results identify dislocations, rather than twins, as the predominant deformation-induced scattering centers of electrons. Meanwhile, the retained twins enable effective mechanical strengthening. The yield strengths of Mg 3.2 Sb 1.5 Bi 0.49 Te 0.01 and Mg 3.2 Sb 0.49 Bi 1.5 Te 0.01 increased by approximately 83.4% and 37.5%, respectively, while their hardness values increased by approximately 28% and 17%. These findings establish room-temperature plastic deformation and subsequent annealing as an effective strategy for achieving mechanically robust materials without compromising thermoelectric performance.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-25
DOI
https://doi.org/10.1073/pnas.2608400123
Primary Topic
Advanced Thermoelectric Materials and Devices
Type
article
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Leveraging room-temperature plastic deformation for tailoring inorganic thermoelectrics

Jun Mao, Shanghao Chen, Yuhao Fu, Jinxuan Cheng et al.
Proceedings of the National Academy of Sciences
Advanced Thermoelectric Materials and Devices
article

Leveraging room-temperature plastic deformation for tailoring inorganic thermoelectrics

Jun Mao, Shanghao Chen, Yuhao Fu, Jinxuan Cheng, Feng Jiang, Peng Zhao, Qian Zhang, Chenhao Lin, Feng Cao, Shizhen Zhi, Jiang Chen, Yao Xu, Tianyu Zhang, Longzhi Wu
article en

Abstract

Mg 3 (Sb, Bi) 2 has emerged as a promising material due to its favorable combination of high thermoelectric performance and ductility. However, a key question remains regarding how plastic deformation affects its thermoelectric properties. Here we investigate the evolution of deformation-induced defects and their influence on the transport and mechanical properties of Mg 3 (Sb, Bi) 2 . Compressive deformation introduces high densities of dislocations and deformation twins, accompanied by a pronounced deterioration in electrical properties near room temperature. After annealing, the thermoelectric properties can be largely restored to their initial values as the dislocation density decreases substantially, whereas the twin fraction remains nearly unchanged. These results identify dislocations, rather than twins, as the predominant deformation-induced scattering centers of electrons. Meanwhile, the retained twins enable effective mechanical strengthening. The yield strengths of Mg 3.2 Sb 1.5 Bi 0.49 Te 0.01 and Mg 3.2 Sb 0.49 Bi 1.5 Te 0.01 increased by approximately 83.4% and 37.5%, respectively, while their hardness values increased by approximately 28% and 17%. These findings establish room-temperature plastic deformation and subsequent annealing as an effective strategy for achieving mechanically robust materials without compromising thermoelectric performance.

Proceedings of the National Academy of SciencesVol. 123(39)
Jilin University (CN), Harbin Institute of Technology (CN), Yanshan University (CN), Ministry of Industry and Information Technology (CN)
Openalex Percentile: Top 26%
Advanced Thermoelectric Materials and Devices
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