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Unexpected high-temperature stability of β-Zn4Sb3 opens the door to enhanced thermoelectric performance
Jianping Lin1, Xudong Li, Guanjun Qiao
1State Key Laboratory for Mechanical Behavior of Materials and ‡Frontier Institute of Science and Technology, Xi'an Jiaotong University , Xi'an, 710049, P. R. China.
Abstract:
β-Zn4Sb3 has one of the highest ZT reported for binary compounds, but its practical applications have been hindered by a reported poor stability. Here we report the fabrication of nearly dense single-phase β-Zn4Sb3 and a study of its thermoelectric transport coefficients across a wide temperature range. Around 425 K we find an abrupt decrease of its thermal conductivity. Past this point, Zn atoms can migrate from crystalline sites to interstitial positions; β-Zn4Sb3 becomes metastable and gradually decomposes into Zn(hcp) and ZnSb. However, above 565 K it recovers its stability; in fact, the damage caused by decomposition can be repaired completely. This is key to its excellent thermoelectric performance at high temperature: the maximum ZT reaches 1.4. Molecular dynamics simulations are used to shed light on the microscopic behavior of the material.
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