Zhang Yinhang, Heo Young-Jung, Park Mira, Park Soo-Jin
Department of Chemistry, Inha University, 100 Inharo, Incheon 22212, Korea.
Department of Bioenvironmental Chemistry, College of Agriculture & Life Science, Chonbuk National University, Jeonju 54896, Korea.
Polymers (Basel). 2019 Jan 18;11(1):167. doi: 10.3390/polym11010167.
Thermoelectric devices have recently attracted considerable interest owing to their unique ability of converting heat to electrical energy in an environmentally efficient manner. These devices are promising as alternative power generators for harvesting electrical energy compared to conventional batteries. Inorganic crystalline semiconductors have dominated the thermoelectric material fields; however, their application has been restricted by their intrinsic high toxicity, fragility, and high cost. In contrast, organic thermoelectric materials with low cost, low thermal conductivity, easy processing, and good flexibility are more suitable for fabricating thermoelectric devices. In this review, we briefly introduce the parameters affecting the thermoelectric performance and summarize the most recently developed carbon-material-based organic thermoelectric composites along with their preparation technologies, thermoelectric performance, and future applications. In addition, the p- and n-type carbon nanotube conversion and existing challenges are discussed. This review can help researchers in elucidating the recent studies on carbon-based organic thermoelectric materials, thus inspiring them to develop more efficient thermoelectric devices.
热电装置最近因其以环境高效的方式将热能转化为电能的独特能力而引起了广泛关注。与传统电池相比,这些装置有望成为收集电能的替代电源。无机晶体半导体在热电材料领域占据主导地位;然而,它们的应用受到其固有的高毒性、易碎性和高成本的限制。相比之下,具有低成本、低导热性、易于加工和良好柔韧性的有机热电材料更适合制造热电装置。在这篇综述中,我们简要介绍了影响热电性能的参数,并总结了最新开发的基于碳材料的有机热电复合材料及其制备技术、热电性能和未来应用。此外,还讨论了p型和n型碳纳米管的转换以及现有挑战。这篇综述有助于研究人员阐明关于碳基有机热电材料的最新研究,从而激励他们开发更高效的热电装置。