J. Mater. Sci. Technol. ›› 2026, Vol. 260: 309-319.DOI: 10.1016/j.jmst.2025.10.004

• Research Article • Previous Articles    

Revealing the tensile behaviour of half-Heusler thermoelectric materials across varying temperatures

Lu Yanyana,b, Jing Yania,b, Zhang Pengxinc, Song Qingfengc, Bai Shengqiangc,*, Chen Lidongc, Wang Wenzhia,b,*   

  1. aSchool of Aeronautics, Northwestern Polytechnical University, Xi’an 710072, China;
    bNational Key Laboratory of Strength and Structural Integrity, Xi’an 710072, China;
    cState Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China
  • Received:2025-08-24 Revised:2025-10-05 Accepted:2025-10-07 Published:2026-07-20 Online:2025-10-13
  • Contact: *E-mail addresses: bsq@mail.sic.ac.cn (S. Bai), wangwenzhi@nwpu.edu.cn (W. Wang)

Abstract: Half-Heusler (HH) materials exhibit high thermoelectric performance, offering strong potential for efficient and reliable conversion of thermal-to-electrical energy. Comprehensive characterisation of the mechanical properties at operating temperatures is crucial for the practical application of such materials. Herein, the temperature-dependent tensile responses and failure mechanisms of p-type Zr0.5Hf0.5CoSb0.8Sn0.2 and n-type Zr0.5Hf0.5NiSn0.985Sb0.015 HHs were systematically investigated. High-temperature mechanical tests revealed that the tensile strength and elastic modulus of both HHs decreased with increasing temperature. The p-type HH retained its elastic load-bearing capacity throughout the tested temperature range (300-1100 K), whereas the tensile behaviour of the n-type HH transitioned from linear (at 300, 500, and 700 K) to nonlinear (at 900 and 1100 K). Micro-fractographic characterisation confirmed that oxidation and segregation intensified in both HHs at elevated temperatures, with the n-type HH exhibiting a greater reduction in grain boundary strength than the p-type HH. Temperature-dependent stress-strain relationships were established for both HHs to accurately describe their tensile responses. These findings provide valuable insights for designing reliable thermoelectric devices for engineering applications.

Key words: Tensile response, Failure mechanism, Half-Heusler materials, Temperature dependence