碲化铋
材料科学
热电效应
热电材料
兴奋剂
声子散射
铜
铋
再结晶(地质)
碲化物
热导率
凝聚态物理
塞贝克系数
冶金
光电子学
复合材料
热力学
物理
古生物学
生物
作者
Chang‐Heng Tan,Xiaojian Tan,Bo Yu,Guoqiang Liu,Hongxiang Wang,Guoqiang Luo,Jingtao Xu,Qingsong Wu,Bo Liang,Jun Jiang
标识
DOI:10.1021/acsaem.9b01207
摘要
In recent decades, bismuth telluride (Bi2Te3) has been in widespread use for normal-temperature thermoelectric cooling. However, commercial zone-melted bismuth telluride faces the big challenge of dramatically decreased thermoelectric properties at higher temperature, which limits its usage at intermediate temperature. In this contribution, the thermoelectric performance of p-type bismuth telluride is enhanced via a synergistic optimization by hot deformation and copper doping. Hot deformation treatment boosts the grain growth and exhibits donor-like effects, leading to improved electronic transport properties. Meanwhile, high-density dislocations and lattice distortions induced by dynamic recrystallization aggravate the phonon-related scattering and significantly compress the lattice thermal conductivity. In addition, copper doping effectively tunes the hole concentration, and the generated point defects also reduce the lattice thermal conductivity. Consequently, a high ZTmax of 1.1 at 400 K and ZTave of 1.0 between 300–500 K were obtained in hot-deformed Cu0.01Bi0.48Sb1.52Te3. This study suggests that the synergistic effect of hot deformation and copper doping is promising to boost the near-normal-temperature thermoelectric power generation of Bi2Te3-based thermoelectrics.
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