Patra Lokanath, Mallick Govind, Sachdeva Geeta, Shock Cameron, Pandey Ravindra
Department of Physics, Michigan Technological University, Houghton, Michigan 49931, United States of America.
DEVCOM Army Research Laboratory, Weapons, and Materials Research Directorate, ATTN: FCDD-RLW, Aberdeen Proving Ground, Aberdeen, Maryland 21005-5069, United States of America.
Nanotechnology. 2021 Mar 16;32(23). doi: 10.1088/1361-6528/abe671.
Graphene-based hybrid van der Waals structures have emerged as a new class of materials for novel multifunctional applications. In such a vertically-stacked heterostructure, it is expected that its mechanical strength can be tailored by the orientation of the constituent monolayers relative to each other. In this paper, we explore this hypothesis by investigating the orientation dependence of the mechanical properties of graphene/h-BN heterostructures together with that of graphene and h-BN bilayers. The calculated results simulating the pull-out experiment show a noticeable dependence of the (out-of-plane) transverse mechanical response, which is primarily governed by the interlayer strength, on the stacking configurations. The degree of the dependence is directly related to the nature of the interlayer interactions, which change from covalent to covalent polar in going from graphene bilayer to graphene/BN to BN bilayer. In contrast, molecular dynamics simulations mimicking nanoindentation experiments predict that the in-plane mechanical response, which mainly depends on the intra-layer interactions, shows little or no dependence on the stacking-order. The BN monolayer is predicted to fracture before graphene regardless of the stacking pattern or configuration in the graphene/BN heterostructure, affirming the mechanical robustness of graphene. Thus, the graphene-based hybrid structures retain both stiffness and toughness required for a wide range of optoelectromechanical applications.
基于石墨烯的混合范德华结构已成为一类用于新型多功能应用的新型材料。在这种垂直堆叠的异质结构中,预计其机械强度可以通过组成单层相对于彼此的取向来调整。在本文中,我们通过研究石墨烯/h-BN异质结构以及石墨烯和h-BN双层的机械性能的取向依赖性来探索这一假设。模拟拔出实验的计算结果表明,(面外)横向机械响应主要由层间强度决定,对堆叠构型有明显的依赖性。依赖程度与层间相互作用的性质直接相关,从石墨烯双层到石墨烯/BN再到BN双层,层间相互作用从共价变为共价极性。相比之下,模拟纳米压痕实验的分子动力学模拟预测,主要取决于层内相互作用的面内机械响应几乎不依赖于堆叠顺序。无论石墨烯/BN异质结构中的堆叠模式或构型如何,BN单层预计在石墨烯之前断裂,这证实了石墨烯的机械稳健性。因此,基于石墨烯的混合结构保留了广泛的光机电应用所需的刚度和韧性。