热电效应
功勋
热电材料
微晶
热导率
凝聚态物理
塞贝克系数
相(物质)
声子散射
材料科学
声子
功率因数
光电子学
纳米技术
工程物理
化学
复合材料
热力学
功率(物理)
冶金
物理
有机化学
作者
Guodong Tang,Wei Wei,Jian Zhang,Yusheng Li,Xiang Wang,Guizhou Xu,Cheng Chang,Zhihe Wang,Youwei Du,Li‐Dong Zhao
摘要
Solid-state thermoelectric technology, interconverting heat to electrical energy, offers a promising solution for relaxing global energy problems. A high dimensionless figure of merit ZT is desirable for high-efficiency thermoelectric power generation. To date, thermoelectric materials research has focused on increasing the material's ZT. Here we first fabricated phase-separated Sn1-xPbxSe materials by hydrothermal synthesis. We demonstrate that the simultaneous optimization of the power factor and significant reduction in thermal conductivity can be achieved in the phase-separated Sn1-xPbxSe material. The introduction of the PbSe phase contributes to improvement of the electrical conductivity and power factor of the SnSe phase. Meanwhile, nanoscale precipitates and mesoscale grains define all-scale hierarchical architectures to scattering phonons, leading to low lattice thermal conductivity. These two favorable factors lead to remarkably high thermoelectric performance with ZT ∼ 1.7 at 873 K in polycrystalline SnSe + 1% PbSe along the pressing direction, which is a record-high ZT for SnSe polycrystals. These findings highlight the prospects of realizing highly effective solid-state thermoelectric devices.
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