Principles and Methods for Improving the Thermoelectric Performance of SiC: A Potential High-Temperature Thermoelectric Material

Materials Pub Date : 2024-07-23 DOI:10.3390/ma17153636
Yun Xing, Bo Ren, Bin Li, Junhong Chen, Shu Yin, Huan Lin, Jie Liu, Haiyang Chen
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Abstract

Thermoelectric materials that can convert thermal energy to electrical energy are stable and long-lasting and do not emit greenhouse gases; these properties render them useful in novel power generation devices that can conserve and utilize lost heat. SiC exhibits good mechanical properties, excellent corrosion resistance, high-temperature stability, non-toxicity, and environmental friendliness. It can withstand elevated temperatures and thermal shock and is well suited for thermoelectric conversions in high-temperature and harsh environments, such as supersonic vehicles and rockets. This paper reviews the potential of SiC as a high-temperature thermoelectric and third-generation wide-bandgap semiconductor material. Recent research on SiC thermoelectric materials is reviewed, and the principles and methods for optimizing the thermoelectric properties of SiC are discussed. Thus, this paper may contribute to increasing the application potential of SiC for thermoelectric energy conversion at high temperatures.
提高碳化硅热电性能的原理和方法:一种潜在的高温热电材料
能将热能转化为电能的热电材料具有稳定、持久、不排放温室气体等特点,因此可用于新型发电设备,以节约和利用损失的热量。碳化硅具有良好的机械性能、优异的耐腐蚀性、高温稳定性、无毒性和环保性。它能承受高温和热冲击,非常适合在高温和恶劣环境下进行热电转换,如超音速飞行器和火箭。本文回顾了 SiC 作为高温热电半导体材料和第三代宽带隙半导体材料的潜力。本文回顾了有关碳化硅热电材料的最新研究,并讨论了优化碳化硅热电特性的原理和方法。因此,本文可能有助于提高碳化硅在高温热电能量转换方面的应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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