School of Mechanical Engineering, Jiangnan University, 214122 Wuxi, People's Republic of China.
Nanotechnology. 2013 Mar 8;24(9):095702. doi: 10.1088/0957-4484/24/9/095702. Epub 2013 Feb 8.
The mechanical properties of supergraphene, cyclicgraphene and graphyne are studied using molecular dynamics simulations based on the AIREBO potential. In particular, we present the chirality-dependence of their mechanical properties, including Young's moduli, shear moduli, Poisson's ratios, ultimate strength and ultimate strains. The relationship of their Young moduli, shear moduli and Poisson ratios is in the order of Y(su) (super) < Y(cy) (cyclic) < Y(gy) (graphyne) < Y(ge) (graphene), G(su) < G(cy) < G(gy) < G(ge) and v(su) > v(cy) > v(gy) > v(ge) in corresponding zigzag and armchair sheets, respectively. Their intersheet adhesion energy is obtained as γ(su) = 30, γ(cy) = 99 and γ(gy) = 149 mJ m(-2), which are much lower than that of γ(ge) = 291 mJ m(-2) (the value is in good agreement with the latest experimental result γ(ge) = 310 ± 30 mJ m(-2)). The obtained adhesion energy is accurately characterized by continuum modeling of the van der Waals interactions. Our study is very useful for the future applications of graphene-like materials in nanoelectromechanical systems.
基于 AIREBO 势,我们使用分子动力学模拟研究了超石墨烯、环状石墨烯和炔烃的力学性能。特别地,我们提出了它们力学性能的手性依赖性,包括杨氏模量、剪切模量、泊松比、极限强度和极限应变。它们的杨氏模量、剪切模量和泊松比的关系顺序为 Y(su) (超) < Y(cy) (环状) < Y(gy) (炔烃) < Y(ge) (石墨烯)、G(su) < G(cy) < G(gy) < G(ge) 和 v(su) > v(cy) > v(gy) > v(ge),分别对应于锯齿形和扶手椅片。我们得到了它们的层间粘附能为 γ(su) = 30、γ(cy) = 99 和 γ(gy) = 149 mJ m(-2),远低于 γ(ge) = 291 mJ m(-2)(该值与最新的实验结果 γ(ge) = 310 ± 30 mJ m(-2)吻合得很好)。获得的粘附能通过范德华相互作用的连续体建模得到了准确的描述。我们的研究对于未来在纳米机电系统中应用类似石墨烯的材料非常有用。