Matrix plainification leads to high thermoelectric performance in plastic Cu2Se/SnSe composites

被引:0
|
作者
Pan Ying [1 ]
Qingyang Jian [1 ]
Yaru Gong [1 ]
Tong Song [2 ]
Yuxuan Yang [2 ]
Yang Geng [1 ]
Junquan Huang [3 ]
Rongxin Sun [3 ]
Chen Chen [3 ]
Tao Shen [3 ]
Yanan Li [1 ]
Wei Dou [1 ]
Congmin Liang [1 ]
Yuqi Liu [1 ]
Deshang Xiang [1 ]
Tao Feng [1 ]
Xiaoyu Fei [4 ]
Yongsheng Zhang [4 ]
Kun Song [5 ]
Yang Zhang [6 ]
Haijun Wu [2 ]
Guodong Tang [1 ]
机构
[1] Nanjing University of Science and Technology,School of Materials Science and Engineering
[2] Xi’an Jiaotong University,State Key Laboratory for Mechanical Behavior of Materials
[3] Yanshan University,Center for High Pressure Science (CHiPS), State Key Laboratory of Metastable Materials Science and Technology
[4] Qufu Normal University,Advanced Research Institute of Multidisciplinary Sciences
[5] Nanjing Tech University,School of Mechanical and Power Engineering
[6] Xi’an Jiaotong University,Electronic Materials Research Laboratory (Key Lab of Education Ministry), School of Electronic and Information Engineering, and Instrumental Analysis Center
关键词
D O I
10.1038/s41467-025-58484-0
中图分类号
学科分类号
摘要
Thermoelectric technology exhibits significant potential for power generation and electronic cooling. In this study, we report the achievement of exceptional thermoelectric performance and high plasticity in stable Cu2Se/SnSe composites. A novel matrix plainification strategy was employed to eliminate lattice vacancies within the Cu2Se matrix of the Cu2Se/SnSe composites, resulting in a marked improvement in carrier mobility and power factor. The presence of quasi-coherent interfaces induces phonon scattering, reducing lattice thermal conductivity without compromising carrier mobility. Consequently, a high figure of merit (ZT) of 3.3 was attained in the Cu2Se/5 wt.% Sn0.96Pb0.01Zn0.03Se composite. Additionally, the presence of high-density nanotwins imparts remarkable plasticity to the composite, yielding a compressive strain of 12%. The secondary phase contributes to the stability of the composite by hindering the extensive migration of Cu ions through bonding interactions. Our findings present a novel strategy for enhancing the thermoelectric performance of composite semiconductors, with potential applicability to other thermoelectric systems.
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