Imani Yengejeh Sadegh, Kazemi Seyedeh Alieh, Wen William, Wang Yun
Centre for Catalysis and Clean Energy, School of Environment and Science, Griffith University Gold Coast Campus QLD 4222 Australia
RSC Adv. 2021 Jun 7;11(33):20232-20247. doi: 10.1039/d1ra01924d. eCollection 2021 Jun 3.
Many applications of two dimensional (2D) materials are often achieved through strain engineering, which is directly dependent on their in-plane mechanical characteristics. Therefore, understanding the in-plane mechanical characteristics of the 2D monolayers becomes imperative. Nevertheless, direct experimental measurements of in-plane mechanical properties of 2D monolayers face great difficulties due to the issues related to the availability of high-quality 2D materials and sophisticated facilities. As an alternative, numerical simulation has the potential to theoretically predict such properties. This review presents some recent progress in numerically exploring the in-plane mechanical properties of 2D materials, including first-principles density functional theory, force-field based classical molecular dynamics, and the finite-element method. The relevant case studies are provided to describe the applications of these methods along with their pros and cons. We hope that the multiscale simulation methods discussed in this review will inspire new ideas and boost further advances of the computational study on the in-plane mechanical properties of 2D materials.
二维(2D)材料的许多应用通常是通过应变工程实现的,这直接取决于它们的面内力学特性。因此,了解二维单分子层的面内力学特性变得至关重要。然而,由于与高质量二维材料的可用性和精密设备相关的问题,二维单分子层面内力学性能的直接实验测量面临巨大困难。作为一种替代方法,数值模拟有潜力从理论上预测这些性能。本文综述了在数值研究二维材料面内力学性能方面的一些最新进展,包括第一性原理密度泛函理论、基于力场的经典分子动力学和有限元方法。提供了相关案例研究来描述这些方法的应用及其优缺点。我们希望本文中讨论的多尺度模拟方法将激发新的思路,并推动二维材料面内力学性能计算研究的进一步发展。