热电材料
热电效应
材料科学
碲化物
锡
碲化镉光电
电
热电发电机
纳米技术
工程物理
冶金
物理
电气工程
工程类
热力学
作者
Wenke He,Dongyang Wang,Haijun Wu,Yu Xiao,Yang Zhang,Dongsheng He,Yue Feng,Yu‐Jie Hao,Jinfeng Dong,Raju Chetty,Lijie Hao,Dongfeng Chen,Jianfei Qin,Qiang Yang,Xin Li,Song Jianming,Yingcai Zhu,Wei Xu,Changlei Niu,Xin Li
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2019-09-26
卷期号:365 (6460): 1418-1424
被引量:585
标识
DOI:10.1126/science.aax5123
摘要
Thermoelectric technology allows conversion between heat and electricity. Many good thermoelectric materials contain rare or toxic elements, so developing low-cost and high-performance thermoelectric materials is warranted. Here, we report the temperature-dependent interplay of three separate electronic bands in hole-doped tin sulfide (SnS) crystals. This behavior leads to synergistic optimization between effective mass (m*) and carrier mobility (μ) and can be boosted through introducing selenium (Se). This enhanced the power factor from ~30 to ~53 microwatts per centimeter per square kelvin (μW cm-1 K-2 at 300 K), while lowering the thermal conductivity after Se alloying. As a result, we obtained a maximum figure of merit ZT (ZT max) of ~1.6 at 873 K and an average ZT (ZT ave) of ~1.25 at 300 to 873 K in SnS0.91Se0.09 crystals. Our strategy for band manipulation offers a different route for optimizing thermoelectric performance. The high-performance SnS crystals represent an important step toward low-cost, Earth-abundant, and environmentally friendly thermoelectrics.
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