材料科学
热电效应
极限抗拉强度
塞贝克系数
热电材料
热导率
拉伤
应变工程
功勋
抗压强度
拉伸应变
复合材料
热电发电机
玻尔兹曼常数
声子
电阻率和电导率
拉伸试验
热的
作者
Haoru Zhang,Songqing Zhao,Yuhong Xia,Xinyue Zhang,Lulu Zhou,Zhenqing Yang
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2025-09-08
卷期号:18 (17): 4219-4219
摘要
To study the effect of strain engineering on the thermoelectric properties of SnSe, we combined first-principles calculation and Boltzmann transport theory to study the effect of -4% to 4% strain on SnSe thermoelectric properties. Compressive strain enhances the maximum power factor (PFmax) of p-type SnSe from 2.3 to 4.3 mW·m-1·K-2. Specifically, under a -3% compressive strain, the thermoelectric figure of merit (ZT) experiences a 50% enhancement, increasing from 0.18 to 0.27. Conversely, for n-type, tensile strain leads to a 26% rise in the PFₘₐₓ, from 53.6 to 67.6 mW·m-1·K-2. Notably, the 4% tensile strain increased the ZT value of n-type SnSe by 123% from 0.66 to 1.47. Importantly, tensile strain effectively reduces lattice thermal conductivity through enhanced phonon scattering, synergistically improving ZT with the enhanced power factor. The results show that strain can effectively improve the thermoelectric properties of SnSe, and that n-type SnSe has great potential in thermoelectric materials.
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