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Symmetry-guided crystal structure design enhances average zT and mechanical properties in rhombohedral GeTe

  • Wen Zhang
  • , Hongda Song
  • , Lifeng Jiang
  • , Yu Yan
  • , Xinghui Wang
  • , Huijun Kang
  • , Enyu Guo
  • , Zongning Chen
  • , Rongchun Chen
  • , Jun Wang
  • , Tongmin Wang
  • Dalian University of Technology

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

As a distinguished thermoelectric (TE) material, GeTe has attracted considerable focus owing to its multiple valence band edges and distinctive phase transition. However, achieving the tradeoff between electrical transport and thermal transport remains a major obstacle to improving its TE performance. To overcome this limitation, we propose regulating the rhombohedral distortion of the crystal lattice. The approach maintains the high band degeneracy characteristic of high-symmetry structures and concurrently benefits from the reduced thermal conductivity of low-symmetry structures, resulting in enhanced TE performance and mechanical properties in GeTe. Specifically, the incorporation of Sb and Bi tailors crystal structure symmetry, thereby optimizing carrier concentration and driving band convergence. Additionally, grain boundaries, dislocations, planar vacancies, and nanoprecipitates enhance multi-frequency phonon scattering. Consequently, Ge0.92Sb0.02Bi0.06Te achieves a maximum zT of ∼1.8 at 723 K, and an excellent average zT (zTave) of ∼1.1 between 323 and 723 K, representing an impressive 124 % enhancement compared to pristine GeTe. Meanwhile, the hardness and compressive strength of Ge0.92Sb0.02Bi0.06Te are enhanced to ∼216 Kgf mm−2and ∼175 MPa, respectively. This work illuminates the pivotal role of symmetry-driven band structure and multi-scale defects in advancing TE materials.

Original languageEnglish
Article number101863
JournalMaterials Today Physics
Volume58
DOIs
StatePublished - Oct 2025

Keywords

  • Band convergence
  • Mechanical properties
  • Multi-frequency phonon scattering
  • Phase transition
  • Thermoelectric performance

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