材料科学
热电效应
正交晶系
结构精修
微晶
热电材料
掺杂剂
声子散射
凝聚态物理
兴奋剂
结晶学
晶体结构
光电子学
热导率
冶金
复合材料
热力学
物理
化学
作者
Lijuan Zhang,Jianli Wang,Qiao Sun,Peng Qin,Zhenxiang Cheng,Zhen‐Hua Ge,Zhen Li,Shi Xue Dou
标识
DOI:10.1002/aenm.201700573
摘要
Abstract The ultrahigh thermoelectric performance of SnSe‐based single crystals has attracted considerable interest in their polycrystalline counterparts. However, the temperature‐dependent structural transition in SnSe‐based thermoelectric materials and its relationship with their thermoelectric performance are not fully investigated and understood. In this work, nanolaminar SnSe polycrystals are prepared and characterized in situ using neutron and synchrotron powder diffraction measurements at various temperatures. Rietveld refinement results indicate that there is a complete inter‐orthorhombic evolution from Pnma to Cmcm by a series of layer slips and stretches along the a ‐ and b ‐axes over a 200 K temperature range. This phase transition leads to drastic enhancement of the carrier concentration and phonon scattering above 600 K. Moreover, the unique nanolaminar structure effectively enhances the carrier mobility of SnSe. Their grain and layer boundaries further improve the phonon scattering. These favorable factors result in a high ZT of 1.0 at 773 K for pristine SnSe polycrystals. The thermoelectric performances of polycrystalline SnSe are further improved by p‐type and n‐type dopants (i.e., doped with Ag and SnCl 2 , respectively), and new records of ZT are achieved in Ag 0.015 Sn 0.985 Se ( ZT of 1.3 at 773 K) and SnSe 0.985 Cl 0.015 ( ZT of 1.1 at 773 K) polycrystals.
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