材料科学
热电效应
塞贝克系数
微晶
凝聚态物理
热电材料
声子
热导率
复合材料
热力学
冶金
物理
作者
Xunuo Lou,Shuang Li,Xiang Chen,Qingtang Zhang,Houquan Deng,Jian Zhang,Di Li,Xuemei Zhang,Yongsheng Zhang,Haibo Zeng,Guodong Tang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2021-04-14
卷期号:15 (5): 8204-8215
被引量:109
标识
DOI:10.1021/acsnano.1c01469
摘要
Polycrystalline SnSe materials with ZT values comparable to those of SnSe crystals are greatly desired due to facile processing, machinability, and scale-up application. Here manipulating interatomic force by harnessing lattice strains was proposed for achieving significantly reduced lattice thermal conductivity in polycrystalline SnSe. Large static lattice strain created by lattice dislocations and stacking faults causes an effective shortening in phonon relaxation time, resulting in ultralow lattice thermal conductivity. A combination of band convergence and resonance levels induced by Ga incorporation contribute to a sharp increase of Seebeck coefficient and power factor. These lead to a high thermoelectric performance ZT ∼ 2.2, which is a record high ZT reported so far for solution-processed SnSe polycrystals. Besides the high peak ZT, a high average ZT of 0.72 and outstanding thermoelectric conversion efficiency of 12.4% were achieved by adopting nontoxic element doping, highlighting great potential for power generation application at intermediate temperatures. Engineering lattice strain to achieve ultralow lattice thermal conductivity with the aid of band convergence and resonance levels provides a great opportunity for designing prospective thermoelectrics.
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