Chen Qi, Yang Kailai, Liang Meng, Kang Junjie, Yi Xiaoyan, Wang Junxi, Li Jinmin, Liu Zhiqiang
Research and Development Center for Semiconductor Lighting Technology, Institute of Semiconductors, Chinese Academy of Sciences, Beijing, 100083, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, 100049, China.
Nano Converg. 2023 Aug 25;10(1):39. doi: 10.1186/s40580-023-00388-0.
As an emerging single crystals growth technique, the 2D-material-assisted epitaxy shows excellent advantages in flexible and transferable structure fabrication, dissimilar materials integration, and matter assembly, which offers opportunities for novel optoelectronics and electronics development and opens a pathway for the next-generation integrated system fabrication. Studying and understanding the lattice modulation mechanism in 2D-material-assisted epitaxy could greatly benefit its practical application and further development. In this review, we overview the tremendous experimental and theoretical findings in varied 2D-material-assisted epitaxy. The lattice guidance mechanism and corresponding epitaxial relationship construction strategy in remote epitaxy, van der Waals epitaxy, and quasi van der Waals epitaxy are discussed, respectively. Besides, the possible application scenarios and future development directions of 2D-material-assisted epitaxy are also given. We believe the discussions and perspectives exhibited here could help to provide insight into the essence of the 2D-material-assisted epitaxy and motivate novel structure design and offer solutions to heterogeneous integration via the 2D-material-assisted epitaxy method.
作为一种新兴的单晶生长技术,二维材料辅助外延在柔性可转移结构制造、异质材料集成和物质组装方面展现出卓越优势,为新型光电子学和电子学发展提供了机遇,并为下一代集成系统制造开辟了道路。研究和理解二维材料辅助外延中的晶格调制机制,对其实际应用和进一步发展大有裨益。在本综述中,我们概述了各种二维材料辅助外延中大量的实验和理论研究成果。分别讨论了远程外延、范德华外延和准范德华外延中的晶格引导机制及相应的外延关系构建策略。此外,还给出了二维材料辅助外延可能的应用场景和未来发展方向。我们相信,此处展示的讨论和观点有助于深入了解二维材料辅助外延的本质,激发新颖结构设计,并通过二维材料辅助外延方法为异质集成提供解决方案。