材料科学
碲化铋
微观结构
热电效应
功勋
热电材料
声子散射
微尺度化学
粒度
声子
光电子学
复合材料
凝聚态物理
热导率
热力学
数学教育
物理
数学
作者
Lipeng Hu,Haijun Wu,Tiejun Zhu,Chenguang Fu,Jiaqing He,Pingjun Ying,Xinbing Zhao
标识
DOI:10.1002/aenm.201500411
摘要
Microstructure manipulation plays an important role in enhancing physical and mechanical properties of materials. Here a high figure of merit zT of 1.2 at 357 K for n‐type bismuth‐telluride‐based thermoelectric (TE) materials through directly hot deforming the commercial zone melted (ZM) ingots is reported. The high TE performance is attributed to a synergistic combination of reduced lattice thermal conductivity and maintained high power factor. The lattice thermal conductivity is substantially decreased by broad wavelength phonon scattering via tuning multiscale microstructures, which includes microscale grain size reduction and texture loss, nanoscale distorted regions, and atomic scale lattice distotions and point defects. The high power factor of ZM ingots is maintained by the offset between weak donor‐like effect and texture loss during the hot deformation. The resulted high zT highlights the role of multiscale microstructures in improving Bi 2 Te 3 ‐based materials and demonstrates the effective strategy in enhancing TE properties.
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