Interface kinetic manipulation enabling efficient and reliable Mg<sub>3</sub>Sb<sub>2</sub> thermoelectrics.

Fu, Yuntian; Ai, Xin; Hu, Zhongliang; Zhao, Shuhan; Lu, Xiaofang; Huang, Jian; Huang, Aibin; Wang, Lianjun et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

Development of efficient and reliable thermoelectric generators is vital for the sustainable utilization of energy, yet interfacial losses and failures between the thermoelectric materials and the electrodes pose a significant obstacle. Existing approaches typically rely on thermodynamic equilibrium to obtain effective interfacial barrier layers, which underestimates the critical factors of interfacial reaction and diffusion kinetics. Here, we develop a desirable barrier layer by leveraging the distinct chemical reaction activities and diffusion behaviors during sintering and operation. Titanium foil is identified as a suitable barrier layer for Mg<sub>3</sub>Sb<sub>2</sub>-based thermoelectric materials due to the creation of a highly reactive ternary MgTiSb metastable phase during sintering, which then transforms to stable binary Ti-Sb alloys during operation. Additionally, titanium foil is advantageous due to its dense structure, affordability, and ease of manufacturing. The interfacial contact resistivity reaches below 5 μΩ·cm<sup>2</sup>, resulting in a Mg<sub>3</sub>Sb<sub>2</sub>-based module efficiency of up to 11% at a temperature difference of 440 K, which exceeds that of most state-of-the-art medium-temperature thermoelectric modules. Furthermore, the robust Ti foil/Mg<sub>3</sub>(Sb,Bi)<sub>2</sub> joints endow Mg<sub>3</sub>Sb<sub>2</sub>-based single-legs as well as modules with negligible degradation over long-term thermal cycles, thereby paving the way for efficient and sustainable waste heat recovery applications.