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Formulation and validation of a reduced order model of 2D materials exhibiting a two-phase microstructure as applied to graphene oxide

机译:应用于氧化石墨烯的具有两相微观结构的二维材料的降阶模型的制定和验证

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Novel 2D materials,e.g., graphene oxide (GO), are attractive building blocks in the design of advanced materials due to their reactive chemistry, which can enhance interfacial interactions while providing good in-plane mechanical properties. Recent studies have hypothesized that the randomly distributed two-phase microstructure of GO, which arises due to its oxidized chemistry, leads to differences in nano-vsmeso‑scale mechanical responses. However, this effect has not been carefully studied using molecular dynamics due to computational limitations. Herein, a continuum mechanics model, formulated based on density functional based tight binding (DFTB) constitutive results for GO nano-flakes, is establish for capturing the effect of oxidation patterns on the material mechanical properties. GO is idealized as a continuum heterogeneous two-phase material, where the mechanical response of each phase, graphitic and oxidized, is informed from DFTB simulations. A finite element implementation of the model is validated via MD simulations and then used to investigate the existence of GO representative volume elements (RVE). We find that for the studied GO, an RVE behavior arises for monolayer sizes in excess to 40 nm. Moreover, we reveal that the response of monolayers with two main different functional chemistries, epoxide-rich and hydroxyl‑rich, present distinct differences in mechanical behavior. In addition, we explored the role of defect density in GO, and validate the applicability of the model to larger length scales by predicting membrane deflection behavior, in close agreement with previous experimental and theoretical observations. As such the work presents a reduced order modeling framework applicable in the study of mechanical properties and deformation mechanisms in 2D multiphase materials.
机译:新型2D材料,例如氧化石墨烯(GO),由于其反应化学特性,在先进材料的设计中是有吸引力的构建基块,它们可以增强界面相互作用,同时提供良好的面内机械性能。最近的研究假设,GO的随机分布的两相微观结构(由于其氧化化学作用而产生)导致了纳米级观力学响应的差异。但是,由于计算限制,尚未使用分子动力学仔细研究这种作用。在此,建立了基于GO纳米片的基于密度泛函的紧密结合(DFTB)本构结果而建立的连续力学模型,用于捕获氧化模式对材料机械性能的影响。 GO被理想化为连续的异相两相材料,其中从DFTB模拟中得知石墨和氧化相的各相的机械响应。通过MD模拟验证模型的有限元实现,然后将其用于研究GO代表性体积元素(RVE)的存在。我们发现,对于所研究的GO,单层尺寸超过40 nm时会出现RVE行为。此外,我们发现具有两种主要不同功能化学物质(富环氧化合物和富羟基化合物)的单分子层在机械行为方面表现出明显差异。此外,我们探索了缺陷密度在GO中的作用,并通过预测膜的挠曲行为验证了该模型在更大长度尺度上的适用性,与先前的实验和理论观察结果非常吻合。因此,该工作提出了可用于研究二维多相材料的机械性能和变形机理的降阶建模框架。

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