Dimitropoulos Marinos, Trakakis George, Androulidakis Charalampos, Kotsidi Maria, Galiotis Costas
Department of Chemical Engineering, University of Patras, GR-26500 Patras, Greece.
Institute of Chemical Engineering Sciences (ICE-HT), Foundation of Research and Technology Hellas, PO Box 1414, GR-26504 Patras, Greece.
Nanotechnology. 2022 Oct 28;34(2). doi: 10.1088/1361-6528/ac98d0.
The combination of two-dimensional materials (2D) into heterostructures enables their integration in tunable ultrathin devices. For applications in electronics and optoelectronics, direct growth of wafer-scale and vertically stacked graphene/hexagonal boron nitride (h-BN) heterostructures is vital. The fundamental problem, however, is the catalytically inert nature of h-BN substrates, which typically provide a low rate of carbon precursor breakdown and consequently a poor rate of graphene synthesis. Furthermore, out-of-plane deformations such as wrinkles are commonly seen in 2D materials grown by chemical vapor deposition (CVD). Herein, a wrinkle-facilitated route is developed for the fast growth of graphene/h-BN vertical heterostructures on Cu foils. The key advantage of this synthetic pathway is the exploitation of the increased reactivity from inevitable line defects arising from the CVD process, which can act as active sites for graphene nucleation. The resulted heterostructures are found to exhibit superlubric properties with increased bending stiffness, as well as directional electronic properties, as revealed from atomic force microscopy measurements. This work offers a brand-new route for the fast growth of Gr/h-BN heterostructures with practical scalability, thus propelling applications in electronics and nanomechanical systems.
将二维材料(2D)组合成异质结构可实现其在可调谐超薄器件中的集成。对于电子学和光电子学应用而言,晶圆级垂直堆叠的石墨烯/六方氮化硼(h-BN)异质结构的直接生长至关重要。然而,根本问题在于h-BN衬底具有催化惰性,这通常导致碳前驱体分解速率较低,进而石墨烯合成速率不佳。此外,通过化学气相沉积(CVD)生长的二维材料中通常会出现诸如皱纹等面外变形。在此,开发了一种促进皱纹形成的途径,用于在铜箔上快速生长石墨烯/h-BN垂直异质结构。这种合成途径的关键优势在于利用了CVD过程中不可避免的线缺陷所增加的反应活性,这些线缺陷可作为石墨烯成核的活性位点。原子力显微镜测量结果表明,所得到的异质结构表现出具有增强弯曲刚度的超润滑特性以及定向电子特性。这项工作为具有实际可扩展性的Gr/h-BN异质结构的快速生长提供了一条全新途径,从而推动了其在电子学和纳米机械系统中的应用。