Liu Shuang, Huo Bingchen, Guo Cun-Yue
School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing 100049, China.
Materials (Basel). 2024 Jul 16;17(14):3524. doi: 10.3390/ma17143524.
Recovery and utilization of low-grade thermal energy is a topic of universal importance in today's society. Photothermal conversion materials can convert light energy into heat energy, which can now be used in cancer treatment, seawater purification, etc., while thermoelectric materials can convert heat energy into electricity, which can now be used in flexible electronics, localized cooling, and sensors. Photothermoelectrics based on the photothermal effect and the Seebeck effect provide suitable solutions for the development of clean energy and energy harvesting. The aim of this paper is to provide an overview of recent developments in photothermal, thermoelectric, and, most importantly, photothermal-thermoelectric coupling materials. First, the research progress and applications of photothermal and thermoelectric materials are introduced, respectively. After that, the classification of different application areas of materials coupling photothermal effect with thermoelectric effect, such as sensors, thermoelectric batteries, wearable devices, and multi-effect devices, is reviewed. Meanwhile, the potential applications and challenges to be overcome for future development are presented, which are of great reference value in waste heat recovery as well as solar energy resource utilization and are of great significance for the sustainable development of society. Finally, the challenges of photothermoelectric materials as well as their future development are summarized.
低品位热能的回收与利用是当今社会普遍关注的重要课题。光热转换材料可将光能转化为热能,目前已应用于癌症治疗、海水净化等领域;而热电材料可将热能转化为电能,目前已应用于柔性电子、局部冷却和传感器等领域。基于光热效应和塞贝克效应的光热发电为清洁能源开发和能量收集提供了合适的解决方案。本文旨在综述光热、热电以及最重要的光热-热电耦合材料的最新研究进展。首先,分别介绍了光热材料和热电材料的研究进展与应用。之后,对光热效应与热电效应耦合材料在传感器、热电池、可穿戴设备和多效应设备等不同应用领域的分类进行了综述。同时,介绍了未来发展的潜在应用和需克服的挑战,这对废热回收以及太阳能资源利用具有重要参考价值,对社会可持续发展具有重要意义。最后,总结了光热发电材料面临的挑战及其未来发展方向。