材料科学
声子散射
热电效应
兴奋剂
热导率
声子
热电材料
电阻率和电导率
功勋
微观结构
载流子
半导体
散射
涂层
凝聚态物理
分析化学(期刊)
光电子学
纳米技术
复合材料
热力学
光学
物理
工程类
电气工程
化学
色谱法
作者
S. Acharya,Byung‐Kyu Yu,Junphil Hwang,Jiyong Kim,Woochul Kim
标识
DOI:10.1002/adfm.202105008
摘要
Abstract ZnO is identified as a potentially attractive n‐type oxide thermoelectric material due to its abundance, nontoxicity, and a high degree of stability. However, working with ZnO is challenging due to its high thermal conductivity from its strong ionic bonds and low electrical conductivity due to its low charge concentrations. Here, it is demonstrated that the electrical and thermal transport properties of ZnO can be simultaneously improved via the successful doping of Al and ZnS coating. The ZnS coating in Al‐doped ZnO is observed and analyzed through microstructure and spectroscopic studies. The power factor for 1% ZnS‐coated Zn 0.98 Al 0.02 O is increased to ≈0.75 mW m −1 K −2 at 1073 K, 161% higher than pure ZnO. This enhancement in the power factor can be explained by the aliovalent Al 3+ doping and modifications in intrinsic defects, leading to an increased carrier concentration. Interestingly, ZnS coating significantly reduces lattice thermal conductivity to ≈2.31 W m −1 K −1 at 1073 K for 2% ZnS‐coated Zn 0.98 Al 0.02 O, a 62% decrease over pure ZnO. This large reduction in lattice thermal conductivity can be elucidated based on coherent phonon scattering via Callaway's model. Overall, the figure of merit, zT , increases to 0.2 in 2% ZnS‐coated Zn 0.98 Al 0.02 O, which is 272% higher than pure ZnO at 1073 K.
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