Liang Jiasheng, Liu Jin, Qiu Pengfei, Ming Chen, Zhou Zhengyang, Gao Zhiqiang, Zhao Kunpeng, Chen Lidong, Shi Xun
State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, China.
Nat Commun. 2023 Dec 19;14(1):8442. doi: 10.1038/s41467-023-44318-4.
The flexible thermoelectric technique, which can convert heat from the human body to electricity via the Seebeck effect, is expected to provide a peerless solution for the power supply of wearables. The recent discovery of ductile semiconductors has opened a new avenue for flexible thermoelectric technology, but their power factor and figure-of-merit values are still much lower than those of classic thermoelectric materials. Herein, we demonstrate the presence of morphotropic phase boundary in AgSe-AgS pseudobinary compounds. The morphotropic phase boundary can be freely tuned by adjusting the material thermal treatment processes. High-performance ductile thermoelectric materials with excellent power factor (22 μWcmK) and figure-of-merit (0.61) values are realized near the morphotropic phase boundary at 300 K. These materials perform better than all existing ductile inorganic semiconductors and organic materials. Furthermore, the in-plane flexible thermoelectric device based on these high-performance thermoelectric materials demonstrates a normalized maximum power density reaching 0.26 Wm under a temperature gradient of 20 K, which is at least two orders of magnitude higher than those of flexible organic thermoelectric devices. This work can greatly accelerate the development of flexible thermoelectric technology.
柔性热电技术可通过塞贝克效应将人体热量转化为电能,有望为可穿戴设备的供电提供无与伦比的解决方案。最近发现的延展性半导体为柔性热电技术开辟了一条新途径,但其功率因数和优值仍远低于传统热电材料。在此,我们证明了AgSe-AgS伪二元化合物中存在同素异形相界。通过调整材料热处理工艺可以自由调节同素异形相界。在300K时,在同素异形相界附近实现了具有优异功率因数(22 μWcmK)和优值(0.61)的高性能延展性热电材料。这些材料的性能优于所有现有的延展性无机半导体和有机材料。此外,基于这些高性能热电材料的面内柔性热电器件在20K的温度梯度下表现出归一化最大功率密度达到0.26 Wm,这比柔性有机热电器件至少高两个数量级。这项工作可以极大地加速柔性热电技术的发展。