声子
热导率
凝聚态物理
材料科学
非弹性中子散射
非谐性
热电材料
声子散射
热电效应
格子(音乐)
散射
中子散射
物理
光学
热力学
复合材料
声学
作者
Yingcai Zhu,Bin Wei,Junyan Liu,Nathan Z. Koocher,Yongheng Li,Lei Hu,Wei He,Guochu Deng,Wei Xu,Xueyun Wang,James M. Rondinelli,Li‐Dong Zhao,G. Jeffrey Snyder,Jiawang Hong
标识
DOI:10.1016/j.mtphys.2021.100428
摘要
Uncovering the microscopic mechanism of low lattice thermal conductivity is essential for exploration and design of high-performance thermoelectrics. AgInSe2 exhibits high thermoelectric performance mainly due to its low thermal conductivity. Here, the origin of its intrinsic low lattice thermal conductivity is studied by temperature-dependent inelastic neutron scattering (INS), X-ray absorption fine structure (XAFS) spectra measurements, and first-principles calculations. A prominent “avoided crossing” feature and low-lying optical modes in the phonon dispersion of AgInSe2 are observed experimentally. These lattice dynamical features cause a local reduction of the phonon group velocity and strongly scatter heat-carrying acoustic phonons, contributing to its intrinsic low lattice thermal conductivity. In addition, both temperature-dependent phonon dispersions and phonon density-of-states measurements reveal strong anharmonicity or phonon-phonon interactions in AgInSe2. XAFS and phonon eigenvector analysis demonstrate the dominant role of Ag vibrations, which is closely associated with the “avoided crossing”, low-lying optical modes and large structural distortion, and thus dominates the reduction of lattice thermal conductivity of AgInSe2.
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