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具有多种自由度的热电材料 GeTe 实现了超高性能。

Thermoelectric GeTe with Diverse Degrees of Freedom Having Secured Superhigh Performance.

机构信息

Centre for Future Materials, University of Southern Queensland, Springfield, Queensland, 4300, Australia.

Materials Engineering, University of Queensland, Brisbane, Queensland, 4072, Australia.

出版信息

Adv Mater. 2019 Apr;31(14):e1807071. doi: 10.1002/adma.201807071. Epub 2019 Feb 13.

Abstract

Driven by the ability to harvest waste heat into reusable electricity and the exclusive role of serving as the power generator for deep spacecraft, intensive endeavors are dedicated to enhancing the thermoelectric performance of ecofriendly materials. Herein, the most recent progress in superhigh-performance GeTe-based thermoelectric materials is reviewed with a focus on the crystal structures, phase transitions, resonant bondings, multiple valance bands, and phonon dispersions. These features diversify the degrees of freedom to tune the transport properties of electrons and phonons for GeTe. On the basis of the optimized carrier concentration, strategies of alignment of multiple valence bands and density-of-state resonant distortion are employed to further enhance the thermoelectric performance of GeTe-based materials. To decrease the thermal conductivity, methods of strengthening intrinsic phonon-phonon interactions and introducing various lattice imperfections as scattering centers are highlighted. An overview of thermoelectric devices assembled from GeTe-based thermoelectric materials is then presented. In conclusion, possible future directions for developing GeTe in thermoelectric applications are proposed. The achieved high thermoelectric performance in GeTe-based thermoelectric materials with rationally established strategies can act as a reference for broader materials to tailor their thermoelectric performance.

摘要

受能够将废热回收为可重复使用的电力以及作为深空探测器的唯一动力源这一能力的驱动,人们正在努力提高环保材料的热电性能。本文重点介绍了 GeTe 基热电材料的最新进展,包括晶体结构、相变、共振键合、多价带和声子色散。这些特征使 GeTe 的电子和声子输运性质的自由度多样化,从而可以对其进行调节。基于优化的载流子浓度,采用多种价带对齐和态密度共振畸变的策略,进一步提高了 GeTe 基材料的热电性能。为了降低热导率,强调了增强本征声子-声子相互作用和引入各种晶格缺陷作为散射中心的方法。然后,介绍了由 GeTe 基热电材料组装的热电器件。最后,提出了在热电应用中开发 GeTe 的可能的未来方向。通过合理的策略在 GeTe 基热电材料中实现的高热电性能可以为更广泛的材料提供参考,以调整其热电性能。

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