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Atomistic simulations of interfacial sliding in amorphous carbon nanocomposites

机译:非晶碳纳米复合材料界面滑动的原子模拟

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摘要

Nanocomposites with amorphous carbon matrix reinforced by hard crystalline nanoparticles are fast developing as next generation super-tough and wear resistant coatings. The frictional wear and toughness properties of these composites are determined by the properties of the interface between crystalline- and amorphous-phases. In this paper we use molecular dynamics and statics simulations to study the interfacial energetics, internal stresses, sliding and friction behavior of diamond- and amorphous-carbon interfaces. It is found that the orientation of crystalline phase has minor effect on sliding behavior. Sliding behavior is affected by two mechanisms (1) bond breaking and reattaching at the interface and (2) deformation of amorphous carbon in the region surrounding the interface. It is found that the deformation away from the interface reduces the resistance to sliding. In structures with higher SP3 content, bond breaking at the interface dominates and there is much lesser deformation in the amorphous phase. The frictional resistance is significantly less if the interfacial bonding is primarily due to the Van Der Waal's interactions.
机译:具有由硬质结晶纳米颗粒增强的无定形碳基质的纳米复合材料正迅速发展为下一代超韧性和耐磨涂层。这些复合材料的摩擦磨损和韧性特性取决于晶相和非晶相之间的界面特性。在本文中,我们使用分子动力学和静力学模拟来研究金刚石和无定形碳界面的界面能,内应力,滑动和摩擦行为。发现结晶相的取向对滑动行为影响较小。滑动行为受以下两种机制影响:(1)界面处的键断裂和重新附着以及(2)界面周围区域中无定形碳的变形。发现远离界面的变形减小了滑动阻力。在具有较高SP3含量的结构中,界面处的键断裂占主导,非晶相中的变形要小得多。如果界面粘结主要是由于范德华相互作用引起的,则摩擦阻力明显较小。

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