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Interfacial Shear Strength of Multilayer Graphene Oxide Films

机译:多层氧化石墨烯薄膜的界面剪切强度

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摘要

Graphene oxide (GO) is considered as one of the most promising layered materials with tunable physical properties and applicability in many important engineering applications. In this work, the interfacial behavior of multilayer GO films was directly investigated via GO-to-GO friction force microscopy, and the interfacial shear strength (ISS) was measured to be 5.3 +/- 3.2 MPa. Based on high resolution atomic force microscopy images and the available chemical data, targeted molecular dynamics simulations were performed to evaluate the influence of functional structure, topological defects, and interlayer registry on the shear response of the GO films. Theoretical values for shear strength ranging from 17 to 132 MPa were predicted for the different structures studied, providing upper bounds for the ISS. Computational results also revealed the atomic origins of the stochastic nature of friction measurements. Specifically, the wide scatter in experimental measurements was attributed to variations in functional structure and topological defects within the sliding volume. The findings of this study provide important insight for understanding the significant differences in strength between monolayer and bulk graphene oxide materials and can be useful for engineering topological structures with tunable mechanical properties.
机译:氧化石墨烯(GO)被认为是最有前途的层状材料之一,具有可调整的物理特性,并且在许多重要的工程应用中具有适用性。在这项工作中,直接通过GO-to-GO摩擦力显微镜研究了多层GO膜的界面行为,测得的界面剪切强度(ISS)为5.3 +/- 3.2 MPa。基于高分辨率原子力显微镜图像和可用的化学数据,进行了针对性的分子动力学模拟,以评估功能结构,拓扑缺陷和层间配准对GO薄膜剪切响应的影响。预测了所研究的不同结构的剪切强度的理论值在17至132 MPa之间,为国际空间站提供了上限。计算结果还揭示了摩擦测量的随机性的原子起源。具体而言,实验测量中的广泛散布归因于滑动体积内功能结构的变化和拓扑缺陷。这项研究的发现为理解单层和本体氧化石墨烯材料之间的强度差异提供了重要的见识,并且可用于工程力学结构可调的拓扑结构。

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