Jiang Yilin, Yu Jincheng, Li Hezhang, Zhuang Hua-Lu, Li Jing-Feng
State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University Beijing 100084 China
Department of Precision Instrument, Tsinghua University Beijing 100084 China.
Chem Sci. 2025 Jan 6;16(4):1617-1651. doi: 10.1039/d4sc06615d. eCollection 2025 Jan 22.
Thermoelectric technology plays an important role in developing sustainable clean energy and reducing carbon emissions, offering new opportunities to alleviate current energy and environmental crises. Nowadays, GeTe has emerged as a highly promising thermoelectric candidate for mid-temperature applications, due to its remarkable thermoelectric figure of merit () of 2.7. This review presents a thorough overview of the advancements in GeTe thermoelectric materials, meticulously detailing the crystal structure, chemical bonding characteristics, band structure, and phonon dynamics to elucidate the underlying mechanisms that contribute to their exceptional performance. Moreover, the phase transition in GeTe introduces unique degrees of freedom that enable multiple pathways for property optimization. In terms of electrical properties, noticeable enhancement can be realized through strategies such as band structure modulation, carrier concentration engineering, and vacancy engineering. For phonon transport properties, by incorporating defect structures with varying dimensions and constructing multi-scale hierarchical architectures, phonons can be effectively scattered across different wavelengths. Additionally, we provide a summary of current research on devices and modules of GeTe. This review encapsulates historical progress while projecting future development trends that will facilitate the practical application of GeTe in alignment with environmentally sustainable objectives.
热电技术在发展可持续清洁能源和减少碳排放方面发挥着重要作用,为缓解当前的能源和环境危机提供了新机遇。如今,由于其具有2.7的卓越热电优值(ZT),锗碲(GeTe)已成为中温应用中极具潜力的热电候选材料。本文综述全面概述了锗碲热电材料的研究进展,详细阐述了其晶体结构、化学键特征、能带结构和声子动力学,以阐明其优异性能背后的潜在机制。此外,锗碲中的相变引入了独特的自由度,为性能优化提供了多种途径。在电学性能方面,通过能带结构调制、载流子浓度工程和空位工程等策略可实现显著增强。对于声子输运性能,通过引入不同尺寸的缺陷结构并构建多尺度分级结构,可使声子在不同波长上有效散射。此外,我们还总结了当前锗碲器件和模块的研究情况。本综述总结了历史进展,同时预测了未来发展趋势,这将有助于锗碲在符合环境可持续目标的情况下实现实际应用。