Multi‐Scale Lattice Strain Engineering Enables Reduced Deformation Potential and High Thermoelectric Performance in GeTe Alloys

ABSTRACT Chemical doping is a widely adopted strategy for optimizing carrier concentration and tailoring the electronic band structure in thermoelectric (TE) materials. However, in intrinsically cation‐deficient systems such as p ‐type GeTe, its effectiveness is often limited because the coexistence of abundant Ge vacancies and aliovalent dopants intensifies charge‐carrier scattering, thereby deteriorating carrier mobility ( µ ). Herein, we report a facile dopant‐free strategy to enhance the TE performance of Ge 0.94 Bi 0.06 Te through the construction of multi‐scale lattice strain. Increasing lattice symmetry and preserving ordered domain boundaries, combined with reduced deformation potential and prolonged carrier relaxation time, thereby improving µ and further boosting weighted mobility ( µ W ) and power factor. Moreover, the engineered multi‐scale lattice defects strongly suppress lattice thermal conductivity ( κ lat ), yielding an increased µ W / κ lat ratio within the optimal carrier concentration range, indicating weakened electron‐phonon coupling. Consequently, the peak figure of merit ( ZT ) of 2.21 and average ZT of 1.4 over 303–803 K are achieved. Furthermore, a single‐stage TE device fabricated using this material attains a conversion efficiency of 7.83% at a temperature difference of 400 K. This work highlights the effectiveness of strain engineering in decoupling electronic and phononic transport and demonstrates its broad applicability for developing high‐performance TE materials.

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Publication Details

Journal
Advanced Energy Materials
Published
2026-08-25
DOI
https://doi.org/10.1002/aenm.71495
Primary Topic
Advanced Thermoelectric Materials and Devices
Type
article
Field-Weighted Citation Impact
0.00

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article

Multi‐Scale Lattice Strain Engineering Enables Reduced Deformation Potential and High Thermoelectric Performance in GeTe Alloys

Huangshui Ma, Pingan Song, Ran Ang, Jianglong Zhu et al.
Advanced Energy Materials
Advanced Thermoelectric Materials and Devices
article

Multi‐Scale Lattice Strain Engineering Enables Reduced Deformation Potential and High Thermoelectric Performance in GeTe Alloys

Huangshui Ma, Pingan Song, Ran Ang, Jianglong Zhu, Min Hong, Xiaolong Li, Yan Zhong, Maoji Tian
article en

Abstract

ABSTRACT Chemical doping is a widely adopted strategy for optimizing carrier concentration and tailoring the electronic band structure in thermoelectric (TE) materials. However, in intrinsically cation‐deficient systems such as p ‐type GeTe, its effectiveness is often limited because the coexistence of abundant Ge vacancies and aliovalent dopants intensifies charge‐carrier scattering, thereby deteriorating carrier mobility ( µ ). Herein, we report a facile dopant‐free strategy to enhance the TE performance of Ge 0.94 Bi 0.06 Te through the construction of multi‐scale lattice strain. Increasing lattice symmetry and preserving ordered domain boundaries, combined with reduced deformation potential and prolonged carrier relaxation time, thereby improving µ and further boosting weighted mobility ( µ W ) and power factor. Moreover, the engineered multi‐scale lattice defects strongly suppress lattice thermal conductivity ( κ lat ), yielding an increased µ W / κ lat ratio within the optimal carrier concentration range, indicating weakened electron‐phonon coupling. Consequently, the peak figure of merit ( ZT ) of 2.21 and average ZT of 1.4 over 303–803 K are achieved. Furthermore, a single‐stage TE device fabricated using this material attains a conversion efficiency of 7.83% at a temperature difference of 400 K. This work highlights the effectiveness of strain engineering in decoupling electronic and phononic transport and demonstrates its broad applicability for developing high‐performance TE materials.

Advanced Energy Materials
University of Southern Queensland (AU), Chengdu University of Information Technology (CN), Chengdu University of Technology (CN), Sichuan University of Arts and Science (CN)
National Key Research and Development Program of China, Guangxi Key Research and Development Program
Openalex Percentile: Top 23%
Advanced Thermoelectric Materials and Devices
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