School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen, 518172, P. R. China.
Department of Materials Science and Engineering, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China.
Small. 2022 Mar;18(12):e2104922. doi: 10.1002/smll.202104922. Epub 2021 Dec 18.
The enormous demand for waste heat utilization and burgeoning eco-friendly wearable materials has triggered huge interest in the development of thermoelectric materials that can harvest low-cost energy resources by converting waste heat to electricity efficiently. In particular, due to their high flexibility, nontoxicity, cost-effectivity, and promising applicability in various fields, organic thermoelectric materials are drawing more attention compared with their toxic, expensive, heavy, and brittle inorganic counterparts. Organic thermoelectric materials are approaching the figure of merit of the inorganic ones via the construction and optimization of unique transport pathways and device geometries. This review presents the recent development of the interdependence and decoupling principles of the thermoelectric efficiency parameters as well as the new achievements of high performance organic thermoelectric materials. Moreover, this review also discusses the advances in the thermoelectric devices with emphasis on their energy-related applications. It is believed that organic thermoelectric materials are emerging as green energy alternatives rivaling their conventional inorganic counterparts in the efficient and pure electricity harvesting from waste heat and solar thermal energy.
对余热利用和新兴环保可穿戴材料的巨大需求,促使人们对热电器件的研究产生了浓厚的兴趣,这种热电器件可以高效地将余热转化为电能,从而利用低成本的能源。特别是,与有毒、昂贵、笨重和易碎的无机材料相比,具有高柔韧性、无毒、成本效益高以及在各种领域有广阔应用前景的有机热电器件引起了更多的关注。通过构建和优化独特的输运途径和器件几何形状,有机热电器件在接近无机材料的优值系数。本文综述了热电器件效率参数的相互依存和去耦原理的最新进展以及高性能有机热电器件的新成果。此外,本文还讨论了热电器件的进展,重点介绍了其在能源相关应用方面的进展。人们相信,有机热电器件正在成为一种绿色能源替代品,可以与传统的无机材料相媲美,从余热和太阳能热能中高效、纯净地收集电能。