A reactive molecular dynamics study of hyperthermal atomic oxygen erosion mechanisms for graphene sheets

石墨烯 化学物理 石墨 雷亚克夫 材料科学 原子单位 吸附 分子动力学 碳纤维 蚀刻(微加工) 纳米技术 复合材料 化学 图层(电子) 计算化学 物理化学 复合数 物理 原子间势 量子力学
作者
Zhiliang Cui,Jin Zhao,Lichao He,Haichuan Jin,Jun Zhang,Dongsheng Wen
出处
期刊:Physics of Fluids [American Institute of Physics]
卷期号:32 (11) 被引量:25
标识
DOI:10.1063/5.0030749
摘要

Carbon-based composite materials are widely used in the aerospace field due to their light weight and excellent physical/chemical properties. The mechanisms of the erosion process, e.g., surface catalysis and ablation, during the impact of oxygen atoms, however, remain unclear. In this study, the surface catalysis and ablation behavior during the erosion process of hyperthermal atomic oxygens were achieved through the molecular dynamics method with the reactive force field potential. The concomitant impacts of energy flux density of energetic oxygen atoms, the presence of multiple layers beneath the graphene sheet, and the morphology of graphite surfaces, i.e., graphite basal plane, armchair (AC) edge surface, and zigzag edge surface, respectively, were discussed. The results show that the adsorption of oxygen atoms dominates at the beginning by generating O2 molecules, suggesting the importance of surface catalytic for any ablation study. A unique “layer-by-layer” ablation phenomenon by hyperthermal atomic oxygen is observed for multi-layered graphite slab, and the ablation rate reduces as the number of graphene layers increases. The morphology/structure of the surface shows significant effects on the ablation rate, with AC surfaces showing the largest etching rate and the basal one showing the lowest. The low binding energies of the AC edge are responsible for the difficulty in the formation of stable functional group structures to resist the etching of high-enthalpy oxygen atoms. Such revelation of the detailed surface catalysis and ablation mechanism at the atomistic scale provides insight into design of future materials for the augmentation of the thermal protection effect.
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