Enhancing the Thermoelectric Performance of Polycrystalline SnSe by Decoupling Electrical and Thermal Transport through Carbon Fiber Incorporation

材料科学 微晶 功勋 热电效应 热导率 热电材料 能量转换效率 解耦(概率) 光电子学 导电体 塞贝克系数 电阻率和电导率 复合材料 纳米技术 电气工程 冶金 物理 工程类 控制工程 热力学
作者
Guangsai Yang,Lina Sang,Meng Li,Sheik Md Kazi Nazrul Islam,Zengji Yue,Liqiang Liu,Jianing Li,David R. G. Mitchell,Ning Ye,Xiaotian Wang
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:12 (11): 12910-12918 被引量:26
标识
DOI:10.1021/acsami.0c00873
摘要

Thermoelectric (TE) materials have attracted extensive interest because of their ability to achieve direct heat-to-electricity conversion. They provide an appealing renewable energy source in a variety of applications by harvesting waste heat. The record-breaking figure of merit reported for single crystal SnSe has stimulated related research on its polycrystalline counterpart. Boosting the TE conversion efficiency requires increases in the power factor and decreases in thermal conductivity. It is still a big challenge, however, to optimize these parameters independently because of their complex interrelationships. Herein, we propose an innovative approach to decouple electrical and thermal transport by incorporating carbon fiber (CF) into polycrystalline SnSe. We show that the incorporation of highly conductive CF can successfully enhance the electrical conductivity, while greatly reducing the thermal conductivity of polycrystalline SnSe. As a result, a high TE figure-of-merit (zT) of 1.3 at 823 K is obtained in p-type SnSe/CF composite polycrystalline materials. Furthermore, SnSe samples incorporated with CFs exhibit superior mechanical properties, which are favorable for device fabrication applications. Our results indicate that the dispersion of CF can be a good way to greatly improve both TE and mechanical performance.
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