Qin Dandan, Cui Bo, Zhu Jianbo, Shi Wenjing, Qin Haixu, Guo Fengkai, Cao Jian, Cai Wei, Sui Jiehe
State Key Laboratory of Advanced Welding and Joining, Harbin Institute of Technology, Harbin 150001, China.
National Key Laboratory for Precision Hot Processing of Metals, Harbin Institute of Technology, Harbin 150001, China.
ACS Appl Mater Interfaces. 2020 Mar 18;12(11):12930-12937. doi: 10.1021/acsami.0c01798. Epub 2020 Mar 5.
Herein, we demonstrate a synergistic combination of novel mechanisms in aluminum (Al)-alloyed YbCoSb-based thermoelectric materials to address both reduction in thermal conductivity and concomitant enhancement in power factor (PF). Upon Al alloying, CoAl nanoprecipitates are embedded in the matrix, leading to (1) significant local strain and thus intensified phonon scattering and (2) carrier injection because of interphase electron transfer. Moreover, by decreasing the Yb filling fraction, not only is the electronic thermal conductivity significantly suppressed but also the carrier concentration is modulated to the optimum range, thus resulting in the dramatically boosted PF, especially below 773 K. As a result, a peak value of 1.36 at 873 K and of 0.96 from 300 to 873 K were obtained in YbCoSb/0.32CoAl. Last but not the least, the mechanical properties of the Al-alloyed samples were considerably improved through CoAl precipitate hardening, offering great potential for commercial applications.
在此,我们展示了在铝(Al)合金化的YbCoSb基热电材料中,通过新机制的协同组合来解决热导率降低和功率因子(PF)相应提高的问题。通过铝合金化,CoAl纳米沉淀物嵌入基体中,导致(1)显著的局部应变,从而增强声子散射,以及(2)由于相间电子转移而产生载流子注入。此外,通过降低Yb填充率,不仅电子热导率得到显著抑制,而且载流子浓度被调制到最佳范围,从而导致PF显著提高,特别是在773 K以下。结果,在YbCoSb/0.32CoAl中,在873 K时获得了1.36的峰值,在300至873 K范围内获得了0.96的峰值。最后但同样重要的是,通过CoAl沉淀硬化,铝合金化样品的机械性能得到了显著改善,为商业应用提供了巨大潜力。