材料科学
热电效应
兴奋剂
热导率
塞贝克系数
热电材料
熔点
基质(化学分析)
声子
晶体结构
分析化学(期刊)
功率因数
光电子学
化学工程
格子(音乐)
Crystal(编程语言)
电导率
区域熔化
电阻率和电导率
晶格常数
凝聚态物理
能量转换效率
热的
热电发电机
纳米技术
作者
Zixuan Chen,Jin Zhou,Shuailiang Chen,Pengju Han,Zihao Ye,Shike Xu,Yi Yang,Y J Zheng,Hongwei Ming,Hong‐Hua Cui,Huaixi Chen,Zhong‐Zhen Luo,Zhigang Zou
摘要
ABSTRACT PbS is a promising thermoelectric material because its band and crystal structures are similar to those of PbTe, as well as for its practical advantages of low cost and high melting point. However, the lower power factor and high lattice thermal conductivity result in suboptimal thermoelectric performance. In this study, we demonstrated that the low‐solid‐solubility Mo undergoes a variety of chemical reactions in the PbS matrix due to the formation of multiple precipitates (MoS 2 , Sb, and Pb). In addition, the Mo doping can reduce cation vacancies, facilitate lattice plainification, and improve carrier mobility. Consequently, the average power factor exhibits an enhancement from 11.7 µW cm ‒1 K ‒2 for Pb 0.985 Sb 0.015 S to 15.6 µW cm ‒1 K ‒2 for Pb 0.965 Sb 0.015 Mo 0.02 S. Then, Se‐alloying further introduces point defects, which intensifies the phonon scattering. As a result, the Pb 0.965 Sb 0.015 Mo 0.02 S 0.8 Se 0.2 achieved a peak ZT of 1.2 at 923 K. Moreover, the average ZT of 0.76 from 400 to 923 K is one of the state‐of‐the‐art values in PbS‐based materials. Furthermore, the fabricated single‐leg device achieved a conversion efficiency of 5.8% at a temperature difference of 551 K. These results indicate that introducing low‐solid‐solubility and highly reactive elements into the matrix is a promising approach to improving thermoelectric properties.
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