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High-performance SnSe thermoelectric materials: Progress and future challenge

机译:高性能SnSe热电材料:进展和未来挑战

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摘要

Thermoelectric materials offer an alternative opportunity to tackle the energy crisis and environmental problems by enabling the direct solid-state energy conversion. As a promising candidate with full potentials for the next generation thermoelectrics, tin selenide (SnSe) and its associated thermoelectric materials have been attracted extensive attentions due to their ultralow thermal conductivity and high electrical transport performance (power factor). To provide a thorough overview of recent advances in SnSe-based thermoelectric materials that have been revealed as promising thermoelectric materials since 2014, here, we first focus on the inherent relationship between the structural characteristics and the supreme thermoelectric performance of SnSe, including the thermodynamics, crystal structures, and electronic structures. The effects of phonon scattering, pressure or strain, and oxidation behavior on the thermoelectric performance of SnSe are discussed in detail. Besides, we summarize the current theoretical calculations to predict and understand the thermoelectric performance of SnSe, and provide a comprehensive summary on the current synthesis, characterization, and thermoelectric performance of both SnSe crystals and polycrystals, and their associated materials. In the end, we point out the controversies, challenges and strategies toward future enhancements of the SnSe thermoelectric materials.
机译:通过实现直接固态能量转换,热电材料为解决能源危机和环境问题提供了另一种机会。硒化锡(SnSe)及其相关的热电材料作为下一代热电技术的潜力巨大的候选材料,因其超低的热导率和高的电传输性能(功率因数)而受到了广泛的关注。为了全面概述自2014年以来被视为有前途的热电材料的SnSe基热电材料的最新进展,在此,我们首先关注SnSe的结构特性与最高热电性能之间的内在联系,包括热力学,晶体结构和电子结构。详细讨论了声子散射,压力或应变以及氧化行为对SnSe热电性能的影响。此外,我们总结了当前的理论计算,以预测和了解SnSe的热电性能,并提供了有关SnSe晶体和多晶以及相关材料的当前合成,表征和热电性能的综合摘要。最后,我们指出了未来增强SnSe热电材料的争议,挑战和策略。

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