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BiCuSeO陶瓷载流子浓度与迁移率的靶向改善机制研究

Study on the Targeted Improvement Mechanism of the Carrier Concentration and Mobility of BiCuSeO Ceramics.

作者信息

Wang Zhibin, Zhao Hong, Luo Xinyu, Han Wenyuan, Wang Hao, Meng Linghao, She Xinqi, Quan Anlong, Peng Yixin, Cai Guoji, Liu Yi, Tang Yong, Feng Bo

机构信息

Institute of Engineering and Technology, Hubei University of Science and Technology, Xianning 437100, China.

School of Mechanical and Electrical Engineering, Wuhan Donghu University, Wuhan 430070, China.

出版信息

Micromachines (Basel). 2023 Sep 10;14(9):1757. doi: 10.3390/mi14091757.

Abstract

BiCuSeO has great application prospects in thermoelectric power generation and thermoelectric catalysis, but it is limited by its lower thermoelectric performance. Herein, BiCuSeO bulk materials were prepared using a solid-phase reaction method and a ball-milling method combined with spark plasma sintering, and then the thermoelectric properties were improved by synergistically increasing carrier concentration and mobility. Al was adopted to dope into the BiCuSeO matrix, aiming to adjust the carrier mobility through energy band adjustment. The results show that Al doping would widen the bandgap and enhance the carrier mobility of BiCuSeO. After Al doping, the thermoelectric properties of the material are improved in the middle- and high-temperature range. Based on Al doping, Pb is adopted as the doping element to dope BiCuSeO to modify the carrier concentration. The results show that Al/Pb dual doping in the BiCuSeO matrix can increase the carrier concentration under the premise of increasing carrier mobility. Therefore, the electrical conductivity of BiCuSeO can be improved while maintaining a large Seebeck coefficient. The power factor of Al/Pb doping reached ~7.67 μWcmK at 873 K. At the same time, the thermal conductivity of all doped samples within the test temperature range maintained a low level (<1.2 WmK). Finally, the value of the Al/Pb-doped BiCuSeO reached ~1.14 at 873 K, which is ~2.72 times that of the pure phase, and the thermoelectric properties of the matrix were effectively improved.

摘要

硒酸铋铜在热电发电和热电催化方面具有巨大的应用前景,但受其较低的热电性能限制。在此,采用固相反应法和球磨法结合放电等离子烧结制备了硒酸铋铜块体材料,然后通过协同提高载流子浓度和迁移率来改善其热电性能。采用铝掺杂到硒酸铋铜基体中,旨在通过能带调整来调节载流子迁移率。结果表明,铝掺杂会拓宽硒酸铋铜的带隙并提高其载流子迁移率。铝掺杂后,材料的热电性能在中高温范围内得到改善。基于铝掺杂,采用铅作为掺杂元素对硒酸铋铜进行掺杂以调节载流子浓度。结果表明,在硒酸铋铜基体中进行铝/铅双掺杂可在提高载流子迁移率的前提下增加载流子浓度。因此,在保持较大塞贝克系数的同时可提高硒酸铋铜的电导率。在873 K时,铝/铅掺杂的功率因子达到7.67 μWcmK。同时,所有掺杂样品在测试温度范围内的热导率保持在较低水平(<1.2 WmK)。最后,在873 K时,铝/铅掺杂的硒酸铋铜的 值达到1.14,是纯相的~2.72倍,基体的热电性能得到有效改善。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b00d/10538208/018e17945534/micromachines-14-01757-g001.jpg

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