Hong Min, Li Meng, Wang Yuan, Shi Xiao-Lei, Chen Zhi-Gang
Center for Future Materials, University of Southern Queensland, Springfield Central, Queensland, 4300, Australia.
School of Chemistry and Physics, Queensland University of Technology, Brisbane, Queensland, 4000, Australia.
Adv Mater. 2023 Jan;35(2):e2208272. doi: 10.1002/adma.202208272. Epub 2022 Nov 28.
Driven by the intensive efforts in the development of high-performance GeTe thermoelectrics for mass-market application in power generation and refrigeration, GeTe-based materials display a high figure of merit of >2.0 and an energy conversion efficiency beyond 10%. However, a comprehensive review on GeTe, from fundamentals to devices, is still needed. In this regard, the latest progress on the state-of-the-art GeTe is timely reviewed. The phase transition, intrinsic high carrier concentration, and multiple band edges of GeTe are fundamentally analyzed from the perspectives of the native atomic orbital, chemical bonding, and lattice defects. Then, the fabrication methods are summarized with a focus on large-scale production. Afterward, the strategies for enhancing electronic transports of GeTe by energy filtering effect, resonance doping, band convergence, and Rashba band splitting, and the methods for strengthening phonon scatterings via nanoprecipitates, planar vacancies, and superlattices, are comprehensively reviewed. Besides, the device assembly and performance are highlighted. In the end, future research directions are concluded and proposed, which enlighten the development of broader thermoelectric materials.
在开发用于发电和制冷大规模市场应用的高性能锗碲热电器件的强烈推动下,基于锗碲的材料展现出大于2.0的高优值以及超过10%的能量转换效率。然而,仍需要对锗碲从基础到器件进行全面综述。在此方面,对最先进的锗碲的最新进展进行了及时综述。从本征原子轨道、化学键和晶格缺陷的角度,对锗碲的相变、本征高载流子浓度和多个能带边缘进行了基础分析。然后总结了制备方法,重点是大规模生产。随后,全面综述了通过能量过滤效应、共振掺杂、能带收敛和 Rashba 能带分裂来增强锗碲电子输运的策略,以及通过纳米沉淀、平面空位和超晶格来强化声子散射的方法。此外,突出了器件组装和性能。最后,总结并提出了未来的研究方向,为更广泛的热电材料的发展提供了启示。