Zhang Kenan, Ding Changchun, Pan Baojun, Wu Zhen, Marga Austin, Zhang Lijie, Zeng Hao, Huang Shaoming
Guangzhou Key Laboratory of Low-Dimensional Materials and Energy Storage Devices, School of Materials and Energy, Guangdong University of Technology, Guangzhou, 510006, China.
Key Laboratory of High-Performance Scientific Computation, School of Science, Xihua University, Chengdu, 610039, China.
Adv Mater. 2021 Nov;33(45):e2105079. doi: 10.1002/adma.202105079. Epub 2021 Sep 20.
Understanding the growth mechanisms of 2D van der Waals (vdW) heterostructures is of great importance in exploring their functionalities and device applications. A custom-built system integrating physical vapor deposition and optical microscopy/Raman spectroscopy is employed to study the dynamic growth processes of 2D vdW heterostructures in situ. This allows the identification of a new growth mode with a distinctly different growth rate and morphology from those of the conventional linear growth mode. A model that explains the difference in morphologies and quantifies the growth rates of the two modes by taking the role of surface diffusion into account is proposed. A range of material combinations including CdI /WS , CdI /MoS , CdI /WSe , PbI /WS , PbI /MoS , PbI /WSe , and Bi Se /WS is systematically investigated. These findings may be generalized to the synthesis of many other 2D heterostructures with controlled morphologies and physical properties, benefiting future device applications.
了解二维范德华(vdW)异质结构的生长机制对于探索其功能和器件应用至关重要。采用一个集成了物理气相沉积和光学显微镜/拉曼光谱的定制系统来原位研究二维vdW异质结构的动态生长过程。这使得能够识别出一种新的生长模式,其生长速率和形态与传统的线性生长模式明显不同。提出了一个模型,该模型通过考虑表面扩散的作用来解释形态差异并量化两种模式的生长速率。系统地研究了一系列材料组合,包括CdI₂/WS₂、CdI₂/MoS₂、CdI₂/WSe₂、PbI₂/WS₂、PbI₂/MoS₂、PbI₂/WSe₂以及Bi₂Se₃/WS₂。这些发现可能会推广到许多其他具有可控形态和物理性质的二维异质结构的合成中,有利于未来的器件应用。