热电效应
热导率
材料科学
热电材料
格子(音乐)
凝聚态物理
工程物理
光电子学
物理
热力学
复合材料
声学
作者
X.-G. Zhang,Yaobo Li,Zhen Wang,Yi-Fan Jiang,Tieshuan Dong,Dangdang Xu,Zhenzhen Feng,Yuli Yan,Zaiping Zeng
标识
DOI:10.1021/acs.jpclett.4c01095
摘要
Traditional semiconductors are known to exhibit excellent electrical properties but oversized lattice thermal conductivities, thus limiting their thermoelectric performance. Herein, we have discovered a low-energy allotrope of those traditional semiconductors. Compared with the wurtzite structure, the lattice thermal conductivity is reduced by more than five times in the haeckelite structure. This is attributed to the softening of acoustic phonon modes and concurrently enhanced anharmonicity in the haeckelite structure. Benefiting from the suppressed lattice thermal conductivity while retaining the excellent electrical properties of wurtzite structure, haeckelite compounds have been proven to be a novel category of high-performance thermoelectric materials. As an excellent representative, haeckelite CdTe exhibits a peak figure of merit approaching 1.3 at n-type doping and high temperature, which experiences a 3-fold improvement compared with its wurtzite counterpart. This work provides an alternative pathway of engineering the lattice thermal conductivities of traditional semiconductors toward superior thermoelectric properties.
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