Department of Mechanical Engineering, Institute of Engineering & Technology, GLA University, Mathura, 281406, India.
Research Centre for Nano-Materials and Energy Technology (RCNMET), School of Science and Technology, Sunway University, No. 5, Jalan Universiti, 47500, Bandar Sunway, Petaling Jaya, Selangor, Malaysia.
J Mol Model. 2022 May 11;28(6):143. doi: 10.1007/s00894-022-05134-7.
Functionalization of graphene is the best way to create a high degree of dispersion and bonding to polymer matrix in order to obtain high performance composites. The effects of carboxyl (-COOH) functionalized graphene (FG) on the mechanical properties of its epoxy-based nanocomposites have been examined by molecular dynamics (MD) simulations. Simulations cells of nanocomposites with varying wt% of FG (1, 2, and 3 wt%) were constructed using Material Studio 6.0. The MD simulation findings of nanocomposites reveal that they have better mechanical properties such as elastic modulus, bulk modulus, shear modulus, and the Poisson's ratio than pure epoxy. Furthermore, the computational results of nanocomposites have been effectively confirmed with available experimental data. Therefore, the current MD simulation shows a decent computational sign for the existing experimental and simulation outcomes on mechanical properties of FG/epoxy nanocomposites.
石墨烯的功能化是在聚合物基体中创造高度分散和键合的最佳方式,以获得高性能复合材料。通过分子动力学(MD)模拟研究了羧基(-COOH)功能化石墨烯(FG)对其环氧树脂基纳米复合材料力学性能的影响。使用 Materials Studio 6.0 构建了具有不同 FG 质量分数(1、2 和 3wt%)的纳米复合材料的模拟单元。纳米复合材料的 MD 模拟结果表明,它们具有更好的力学性能,如弹性模量、体积模量、剪切模量和泊松比,优于纯环氧树脂。此外,纳米复合材料的计算结果与现有的实验数据有效吻合。因此,目前的 MD 模拟对 FG/环氧树脂纳米复合材料力学性能的现有实验和模拟结果具有较好的计算意义。