Xu Xiangming, Guo Tianchao, Kim Hyunho, Hota Mrinal K, Alsaadi Rajeh S, Lanza Mario, Zhang Xixiang, Alshareef Husam N
Materials Science and Engineering, Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Saudi Arabia.
Adv Mater. 2022 Apr;34(14):e2108258. doi: 10.1002/adma.202108258. Epub 2022 Feb 23.
Wafer-scale growth has become a critical bottleneck for scaling up applications of van der Waal (vdW) layered 2D materials in high-end electronics and optoelectronics. Most vdW 2D materials are initially obtained through top-down synthesis methods, such as exfoliation, which can only prepare small flakes on a micrometer scale. Bottom-up growth can enable 2D flake growth over a large area. However, seamless merging of these flakes to form large-area continuous films with well-controlled layer thickness and lattice orientation is still a significant challenge. This review briefly introduces several vdW layered 2D materials covering their lattice structures, representative physical properties, and potential roles in large-scale applications. Then, several methods used to grow vdW layered 2D materials at the wafer scale are reviewed in depth. In particular, three strategies are summarized that enable 2D film growth with a single-crystalline structure over the whole wafer: growth of an isolated domain, growth of unidirectional domains, and conversion of oriented precursors. After that, the progress in using wafer-scale 2D materials in integrated devices and advanced epitaxy is reviewed. Finally, future directions in the growth and scaling of vdW layered 2D materials are discussed.
晶圆级生长已成为扩大范德华(vdW)层状二维材料在高端电子和光电子领域应用的关键瓶颈。大多数vdW二维材料最初是通过自上而下的合成方法获得的,如剥离法,这种方法只能制备微米级的小薄片。自下而上的生长能够实现二维薄片在大面积上的生长。然而,将这些薄片无缝合并以形成具有良好控制的层厚和晶格取向的大面积连续薄膜仍然是一个重大挑战。本文简要介绍了几种vdW层状二维材料,包括它们的晶格结构、代表性物理性质以及在大规模应用中的潜在作用。然后,深入综述了在晶圆级生长vdW层状二维材料所使用的几种方法。特别总结了三种能够在整个晶圆上实现单晶结构二维薄膜生长的策略:孤立畴生长、单向畴生长和定向前驱体的转化。之后,综述了在集成器件和先进外延中使用晶圆级二维材料的进展。最后,讨论了vdW层状二维材料生长和规模化的未来方向。