论文标题

电子起源,以提高CU2SE的热电效率

Electronic Origin for the Enhanced Thermoelectric Efficiency of Cu2Se

论文作者

Sun, Shucui, Li, Yiwei, Chen, Yujie, Xu, Xiang, Kang, Lu, Zhou, Jingsong, Xia, Wei, Liu, Shuai, Wang, Meixiao, Jiang, Juan, Liang, Aiji, Pei, Ding, Zhao, Kunpeng, Qiu, Pengfei, Shi, Xun, Chen, Lidong, Guo, Yanfeng, Wang, Zhengguo, Zhang, Yan, Liu, Zhongkai, Yang, Lexian, Chen, Yulin

论文摘要

热电材料(TMS)可以唯一将废热转化为电力,这为全球能源危机提供了潜在的解决方案,这种危机越来越严重。大量Cu2SE具有Cu离子的离子电导率,其优异ZT的热电图显着增强了〜3的高度增强,其结构过渡近于400 K附近。在这里,我们显示了CU2SE的系统研究CU2SE及其使用高分辨率演化的电子结构,并使用高分辨率的角度分辨率分解光学分解光学分辨率。在整个结构过渡中加热后,布里渊区拐角附近的电子状态逐渐消失,而布里渊区中心附近的频带突然向高结合能量转移并发展一个能隙。有趣的是,观察到的频带重建很好地重现了CU2SE的塞贝克系数的温度演变,为电子起源提供了一种电子起源,以急剧增强400 K附近的热电性能。当前的结果不仅是结构相过渡,电子结构和热电学材料之间的结构相过渡,凝结材料的杂物,还提供了有价值的系统,并实现了新的搜索范围,并实现了良好的创作。

Thermoelectric materials (TMs) can uniquely convert waste heat into electricity, which provides a potential solution for the global energy crisis that is increasingly severe. Bulk Cu2Se, with ionic conductivity of Cu ions, exhibits a significant enhancement of its thermoelectric figure of merit zT by a factor of ~3 near its structural transition around 400 K. Here, we show a systematic study of the electronic structure of Cu2Se and its temperature evolution using high-resolution angle-resolved photoemission spectroscopy. Upon heating across the structural transition, the electronic states near the corner of the Brillouin zone gradually disappear, while the bands near the centre of Brillouin zone shift abruptly towards high binding energies and develop an energy gap. Interestingly, the observed band reconstruction well reproduces the temperature evolution of the Seebeck coefficient of Cu2Se, providing an electronic origin for the drastic enhancement of the thermoelectric performance near 400 K. The current results not only bridge among structural phase transition, electronic structures, and thermoelectric properties in a condensed matter system, but also provide valuable insights into the search and design of new generation of thermoelectric materials.

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