材料科学
热电效应
斯库特绿铁矿
热电材料
微观结构
纳米颗粒
塞贝克系数
声子
解耦(概率)
化学工程
纳米技术
凝聚态物理
热力学
复合材料
热导率
控制工程
工程类
物理
作者
Dandan Qin,Haijun Wu,Songting Cai,Jianbo Zhu,Bo Cui,Li Yin,Haixu Qin,Wenjing Shi,Yang Zhang,Qian Zhang,Weishu Liu,Jian Cao,Stephen J. Pennycook,Wei Cai,Jiehe Sui
标识
DOI:10.1002/aenm.201902435
摘要
Abstract Filled Skutterudites are one group of the most promising thermoelectric materials in real power generation applications. Herein, homogeneously dispersed multiscale CoSi nanostructures are successfully embedded into grains of the classic skutterudite system, Yb 0.3 Co 4 Sb 12 , by the in situ precipitation method. Such nanoprecipitates contribute much to the synergistic enhancement of thermoelectric and mechanical properties. On one hand, by the fine deployment of multiscale CoSi nanoparticles, the lattice thermal conductivity is significantly depressed almost to the theoretical limit because of the disrupted propagation of the heat‐carrying phonons at phase boundaries. On the other hand, low‐energy electrons are effectively screened due to the energy filtering effect by the interfacial potential barrier between the CoSi nanoprecipitate and the matrix, resulting in an enhanced power factor. Taken together, an enhanced peak ZT value of ≈1.5 at 873 K for the Yb 0.3 Co 4 Sb 12 /0.05CoSi composite is obtained with a high average ZT ≈0.95 between 300 and 873 K through decoupling the electrical and thermal transport parameters. Moreover, such a microstructure with multiscale CoSi nanoparticles shows significantly improved mechanical properties owing to particle hardening, making it more competitive for practical applications.
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