Boosting Thermoelectric Performance via Weakening Carrier‐Phonon Coupling in BiCuSeO‐Graphene Composites

Author:

Zhou Zhifang1ORCID,Guo Jinming12,Zheng Yunpeng1,Yang Yueyang1,Yang Bin2,Li Dengfeng2,Zhang Wenyu1,Wei Bin13,Liu Chang1,Lan Jin‐Le4,Nan Ce‐Wen1,Lin Yuan‐Hua1

Affiliation:

1. State Key Laboratory of New Ceramics and Fine Processing School of Materials Science and Engineering Tsinghua University Beijing 100084 China

2. Ministry of Education Key Laboratory of Green Preparation and Application for Functional Materials School of Materials Science and Engineering Hubei University Wuhan 430062 China

3. Henan Key Laboratory of Materials on Deep‐Earth Engineering School of Materials Science and Engineering Henan Polytechnic University Jiaozuo 454000 China

4. State Key Laboratory of Organic‐inorganic Composite College of Materials Science and Engineering Beijing University of Chemical Technology Beijing 100029 China

Abstract

AbstractBiCuSeO is a promising oxygen‐containing thermoelectric material due to its intrinsically low lattice thermal conductivity and excellent service stability. However, the low electrical conductivity limits its thermoelectric performance. Aliovalent element doping can significantly improve their carrier concentration, but it may also impact carrier mobility and thermal transport properties. Considering the influence of graphene on carrier‐phonon decoupling, Bi0.88Pb0.06Ca0.06CuSeO (BPCCSO)‐graphene composites are designed. For further practical application, a rapid preparation method is employed, taking less than 1 h, which combines self‐propagating high‐temperature synthesis with spark plasma sintering. The incorporation of graphene simultaneously optimizes the electrical properties and thermal conductivity, yielding a high ratio of weighted mobility to lattice thermal conductivity (144 at 300 K and 95 at 923 K). Ultimately, BPCCSO‐graphene composites achieve exceptional thermoelectric performance with a ZT value of 1.6 at 923 K, bringing a ≈40% improvement over BPCCSO without graphene. This work further promotes the practical application of BiCuSeO‐based materials and this facile and effective strategy can also be extended to other thermoelectric systems.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

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