Zhang Hu, Cheng Shao-Dong, Lu Lu, Mi Shao-Bo
State Key Laboratory for Mechanical Behavior of Materials & School of Materials Science and Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Ji Hua Laboratory, Foshan, 510006, Guangdong, China.
Nanoscale. 2021 Sep 23;13(36):15205-15209. doi: 10.1039/d1nr03873g.
An atomic-scale understanding of nanoscale precipitates in thermoelectric materials will help us explore their microstructure-property relationship, providing a strategy to optimize their thermoelectric properties. In thermoelectric β-SnTe, using advanced electron microscopy techniques, self-aligned nanoscale precipitates have been identified as γ-SnTe ultrathin nanosheets that induce anisotropic strain in the β-SnTe matrix. The interlayer van der Waals interactions occur across the interface of γ-SnTe ultrathin nanosheets and the β-SnTe matrix. The phase transition from γ-SnTe ultrathin nanosheets to β-SnTe can be accomplished by electron-beam irradiation that lays out an approach for tuning the properties of SnTe-based thermoelectric materials.
对热电材料中纳米级沉淀物的原子尺度理解将有助于我们探索其微观结构与性能的关系,为优化其热电性能提供策略。在热电材料β-SnTe中,利用先进的电子显微镜技术,已确定自对准纳米级沉淀物为γ-SnTe超薄纳米片,它们在β-SnTe基体中引起各向异性应变。γ-SnTe超薄纳米片与β-SnTe基体的界面存在层间范德华相互作用。通过电子束辐照可实现γ-SnTe超薄纳米片向β-SnTe的相变,这为调控基于SnTe的热电材料性能开辟了一条途径。