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Enhanced mechanical properties of 4H-SiC by epitaxial carbon films obtained from bilayer graphene

机译:通过双层石墨烯获得的外延碳膜增强了4H-SiC的力学性能

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摘要

Graphene exhibits excellent mechanical properties under atomically thin thickness, which made it very suitable for nanoelectromechanical systems that had high requirements for the thickness of coatings. The epitaxial bilayer graphene on the 4H-SiC (0001) surface presents high stiffness and hardness comparable to diamond. However, due to structural transition occurring at the nanoscale, it is difficult to elucidate reinforcement mechanisms using experimental methods. Here, we applied molecular dynamics simulations to study nanoindentation of epitaxial carbon-film-covered 4H-SiC (0001) surfaces. Because a weak interaction potential existed between graphene layers at indentation depth (h < 0.8 angstrom) that far smaller than interlayer distance, the epitaxial bilayer graphene does not allow the 4H-SiC to exceed its intrinsic stiffness. When the indentation depth h >= 6.45 angstrom, the sp(3) hybridized bonds formed on the interlayer of graphene, which leads to fewer amorphous atoms in the sample of 4H-SiC and exhibits stronger stiffness, in comparison with bare 4H-SiC. This strongly suggests the existence of sp(3) bonds contributing to the surface strengthening. Meanwhile, we found that the comprehensive mechanical properties of nanocomposites with hydrogenated diamond-like films were superior to those of nanocomposites with other carbon films at high temperatures.
机译:石墨烯在原子薄的厚度下表现出优异的机械性能,这使得非常适合于对涂层厚度有高要求的纳米机电系统。在4H-SiC(0001)表面上的外延双层石墨烯具有与金刚石相当的高刚度和硬度。然而,由于在纳米级发生的结构转变,难以使用实验方法阐明钢筋机制。在这里,我们应用分子动力学模拟以研究外延碳膜覆盖的4H-SiC(0001)表面的纳米indentation。因为在压痕深度(H <0.8埃)的石墨烯层之间存在弱相互作用电位,其远小于层间距离,因此外延双层石墨烯不允许超过其固有刚度。当压痕深度h> = 6.45埃时,与裸4H-SiC相比,在石墨烯中形成的SP(3)杂交键在4H-SiC样品中导致较少的无定形原子并表现出更强的刚度。这强烈建议存在有助于表面强化的SP(3)键。同时,我们发现,具有氢化金刚石状膜的纳米复合材料的综合力学性能优于高温下与其他碳膜的纳米复合材料。

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