Advances in flexible inorganic thermoelectrics

EcoEnergy Pub Date : 2023-12-28 DOI:10.1002/ece2.17
Xiao-Lei Shi, Tianyi Cao, Wenyi Chen, Boxuan Hu, Shuai Sun, Wei-Di Liu, Meng Li, Wanyu Lyu, Min Hong, Zhi-Gang Chen
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Abstract

Solid-state bismuth telluride-based thermoelectric devices enable the generation of electricity from temperature differences and have been commercially applied in various fields. However, in many scenarios, the surface of the heat source is not flat. Therefore, it is crucial to develop flexible thermoelectric materials and devices to efficiently utilize heat sources and expand their applications. Compared with organic thermoelectric materials and devices, inorganic flexible thermoelectric materials and devices have much higher thermoelectric performance and stability. Considering the rapid development in this research field, we carefully summarize the design principles, structures, and thermoelectric properties of inorganic flexible materials and their devices reported in the recent 3 years, including sulfides, selenides, tellurides, and composite materials designed based on these inorganics. The structural designs of flexible thermoelectric devices based on micro-sized bulk materials are also carefully summarized. Additionally, we overview the mechanical stability and methods for reducing internal resistance for designs of inorganic flexible thermoelectric devices. In the end, we provide outlooks on future research directions for inorganic flexible thermoelectric materials and devices. This review will help guide thermoelectric researchers, beginners, and students.

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柔性无机热电材料的研究进展
基于固体碲化铋的热电装置能够从温差中发电,并已在各个领域得到商业应用。然而,在许多情况下,热源的表面不是平坦的。因此,开发柔性热电材料和器件是有效利用热源和扩大其应用范围的关键。与有机热电材料和器件相比,无机柔性热电材料和器件具有更高的热电性能和稳定性。考虑到这一研究领域的快速发展,我们仔细总结了近3年来报道的无机柔性材料及其器件的设计原理、结构和热电性能,包括硫化物、硒化物、碲化物以及基于这些无机物设计的复合材料。对基于微尺寸块状材料的柔性热电器件的结构设计进行了详细的总结。此外,我们还概述了无机柔性热电器件设计的机械稳定性和降低内阻的方法。最后,对无机柔性热电材料和器件的未来研究方向进行了展望。这篇综述将有助于指导热电研究人员,初学者和学生。
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