State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, P.R. China.
Department of Physics, University of Michigan, Ann Arbor, MI, 48109, USA.
Adv Mater. 2017 May;29(20). doi: 10.1002/adma.201602013. Epub 2017 Jan 23.
Considering only about one third of the world's energy consumption is effectively utilized for functional uses, and the remaining is dissipated as waste heat, thermoelectric (TE) materials, which offer a direct and clean thermal-to-electric conversion pathway, have generated a tremendous worldwide interest. The last two decades have witnessed a remarkable development in TE materials. This Review summarizes the efforts devoted to the study of non-equilibrium synthesis of TE materials with multi-scale structures, their transport behavior, and areas of applications. Studies that work towards the ultimate goal of developing highly efficient TE materials possessing multi-scale architectures are highlighted, encompassing the optimization of TE performance via engineering the structures with different dimensional aspects spanning from the atomic and molecular scales, to nanometer sizes, and to the mesoscale. In consideration of the practical applications of high-performance TE materials, the non-equilibrium approaches offer a fast and controllable fabrication of multi-scale microstructures, and their scale up to industrial-size manufacturing is emphasized here. Finally, the design of two integrated power generating TE systems are described-a solar thermoelectric-photovoltaic hybrid system and a vehicle waste heat harvesting system-that represent perhaps the most important applications of thermoelectricity in the energy conversion area.
考虑到世界能源消耗只有约三分之一被有效地用于功能用途,其余的则以废热形式耗散,因此具有直接、清洁的热能-电能转换途径的热电 (TE) 材料引起了全世界的极大兴趣。在过去的二十年中,TE 材料取得了显著的发展。本文综述了致力于研究具有多尺度结构的非平衡合成 TE 材料、它们的输运行为以及应用领域的努力。突出强调了旨在开发具有多尺度结构的高效 TE 材料的研究工作,包括通过工程设计具有不同维度的结构来优化 TE 性能,这些结构的维度从原子和分子尺度跨越到纳米尺寸,再到介观尺度。考虑到高性能 TE 材料的实际应用,非平衡方法提供了多尺度微结构的快速可控制造,并且强调了将其扩展到工业规模制造的重要性。最后,描述了两个集成的发电 TE 系统的设计——太阳能热电-光伏混合系统和车辆废热收集系统——这可能代表了热电在能源转换领域最重要的应用。