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
Subjects:
Online Access:https://hdl.handle.net/10356/159057
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Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-159057
record_format dspace
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials::Energy materials
Energy Conversion
Thermal Conductivity
spellingShingle Engineering::Materials::Energy materials
Energy Conversion
Thermal Conductivity
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
High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity
description 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.
author2 School of Materials Science and Engineering
author_facet School of Materials Science and Engineering
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
format Article
author 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
author_sort Hu, Lei
title High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity
title_short High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity
title_full High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity
title_fullStr High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity
title_full_unstemmed High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity
title_sort high thermoelectric performance enabled by convergence of nested conduction bands in pb₇bi₄se₁₃ with low thermal conductivity
publishDate 2022
url https://hdl.handle.net/10356/159057
_version_ 1773551363140091904
spelling sg-ntu-dr.10356-1590572023-07-14T16:06:20Z High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity 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 School of Materials Science and Engineering Institute of Materials Research and Engineering, A*STAR Engineering::Materials::Energy materials Energy Conversion 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, 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. Agency for Science, Technology and Research (A*STAR) Ministry of Education (MOE) Nanyang Technological University Published version Q.Y.Y. acknowledges the Singapore MOE Tier 2 under Grant MOE2018-T2-1-010, Singapore A*STAR Pharos Program SERC 1527200022. Q.Y.Y. and J.W.X. acknowledge the Singapore A*STAR project A19D9a0096. This work is also supported by the Japan Society for the Promotion of Science (JSPS) KAKENHI, Grant JP 19F19057. L.H. acknowledges the International Research Fellowship of JSPS. F.Y.Q. acknowledges the Chinese Scholarship Council (CSC) for the scholarship in Tokyo Institute of Technology. X.X.Z. thanks for the support from the Presidential Postdoctoral Fellowship, Nanyang Technological University, Singapore via grant 03INS000973C150. K.H. and D.V.M.R. acknowledge funding from the Accelerated Materials Development for Manufacturing Program at A*STAR via the AME Programmatic Fund by the Agency for Science, Technology and Research under Grant No. A1898b0043. 2022-05-30T07:10:48Z 2022-05-30T07:10:48Z 2021 Journal Article Hu, L., Fang, Y., Qin, F., Cao, X., Zhao, X., Luo, Y., Repaka, D. V. M., Luo, W., Suwardi, A., Soldi, T., Aydemir, U., Huang, Y., Liu, Z., Hippalgaonkar, K., Snyder, G. J., Xu, J. & Yan, Q. (2021). High thermoelectric performance enabled by convergence of nested conduction bands in Pb₇Bi₄Se₁₃ with low thermal conductivity. Nature Communications, 12, 4793-. https://dx.doi.org/10.1038/s41467-021-25119-z 2041-1723 https://hdl.handle.net/10356/159057 10.1038/s41467-021-25119-z 12 4793 en MOE2018-T2-1-010 SERC 1527200022 A19D9a0096 03INS000973C150 A1898b0043 Nature Communications © 2021 The Author(s). This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/ licenses/by/4.0/. application/pdf