High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity

Thermoelectrics enable waste heat recovery, holding promises in relieving energy and environmental crisis. Lillianite materials have been long-term ignored due to low thermoelectric efficiency. Herein we report the discovery of superior thermoelectric performance in Pb7Bi4Se13 based lillianites, wit...

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Main Authors: Hu, Lei, Fang, Yue-Wen, Qin, Feiyu, Cao, Xun, Zhao, Xiaoxu, Luo, Yubo, Repaka, Durga Venkata Maheswar, Luo, Wenbo, Suwardi, Ady, Soldi, Thomas, Aydemir, Umut, Huang, Yizhong, Liu, Zheng, Hippalgaonkar, Kedar, Snyder, G. Jeffrey, Xu, Jianwei, Yan, Qingyu
Other Authors: School of Materials Science and Engineering
Format: Article
Language:English
Published: 2022
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Online Access:https://hdl.handle.net/10356/159057
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Institution: Nanyang Technological University
Language: English
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Summary:Thermoelectrics enable waste heat recovery, holding promises in relieving energy and environmental crisis. Lillianite materials have been long-term ignored due to low thermoelectric efficiency. Herein we report the discovery of superior thermoelectric performance in Pb7Bi4Se13 based lillianites, with a peak Figure of merit, zT of 1.35 at 800 K and a high average zT of 0.92 (450 - 800 K). A unique quality factor is established to predict and evaluate thermoelectric performances. It considers both band nonparabolicity and band gaps, commonly negligible in conventional quality factors. Such appealing performance is attributed to the convergence of effectively nested conduction bands, providing a high number of valley degeneracy, and a low thermal conductivity, stemming from large lattice anharmonicity, low-frequency localized Einstein modes and the coexistence of high-density moiré fringes and nanoscale defects. This work rekindles the vision that Pb7Bi4Se13 based lillianites are promising candidates for highly efficient thermoelectric energy conversion.