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Factors Controlling the Size of Graphene Oxide Sheets Produced via the Graphite Oxide Route

机译:控制通过石墨氧化物路线生产的石墨烯氧化物片材尺寸的因素

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We have studied the effect of the oxidation path and the mechanical energy input on the size of graphene oxide sheets derived from graphite oxide. The cross-planar oxidation of graphite from the (0002) plane results in periodic cracking of the uppermost graphene oxide layer, limiting its lateral dimension to less than 30 mu m. We use an energy balance between the elastic strain energy associated with the undulation of graphene oxide sheets at the hydroxyl and epoxy sites, the crack formation energy, and the interaction energy between graphene layers to determine the cell size of the cracks. As the effective crack propagation rate in the cross-planar direction is an order of magnitude smaller than the edge-to-center oxidation rate, graphene oxide single sheets larger than those defined by the periodic cracking cell size are produced depending on the aspect ratio of the graphite particles. We also demonstrate that external energy input from hydrodynamic drag created by fluid motion or sonication, further reduces the size of the graphene oxide sheets through tensile stress buildup in the sheets.
机译:我们已经研究了氧化路径和机械能输入对衍生自氧化石墨的氧化石墨烯片尺寸的影响。从(0002)平面开始的石墨横断面氧化导致最上层的石墨烯氧化物层周期性开裂,从而将其横向尺寸限制为小于30μm。我们使用与在羟基和环氧位置处的氧化石墨烯片材起伏相关的弹性应变能,裂纹形成能以及石墨烯层之间的相互作用能之间的能量平衡来确定裂纹的单元尺寸。由于在横向方向上的有效裂纹扩展速率比边缘到中心的氧化速率小一个数量级,因此,根据碳纳米管的长宽比,可以生产出比周期性裂纹单元尺寸所定义的单层更大的氧化石墨烯单片。石墨颗粒。我们还证明了通过流体运动或声处理产生的流体动力阻力所输入的外部能量,通过在板中形成张应力,进一步减小了氧化石墨烯板的尺寸。

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