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Reactive Molecular Dynamics Study of Oxidation of Aggregated Aluminum Nanoparticles

机译:聚集铝纳米粒子氧化的反应性分子动力学研究

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Oxidation behavior of aggregated aluminum nanoparticles (Al-NPs), specifically the combustion propagation, is studied, when only part of the aggregated Al-NPs is heated to 1100 K and the rest of the system is kept at 300 K. Here, multi-million atoms molecular dynamics (MD) simulation reveals the sintering/coalescence phenomena for the different diameters (D = 26, 36 and 46 nm) aggregated systems. Various consuming rates of core aluminum are investigated for different layers and different diameters aggregated systems. The formation of Al_2O_3 fragments outside the shell (the largest covalently bonded aluminum-oxide cluster) structure is confirmed from AlO and AlO_2 intermediates. The smaller size of Al-NPs results in faster trend of transition from Al-rich to O-rich for most outside small clusters. However, more core aluminum reacts with shell oxygen leads to faster decreasing of the ratio of O/Al in the shell fragment for larger Al-NPs system.
机译:研究了聚集铝纳米粒子(Al-NPS)的氧化行为,特别是燃烧繁殖,当仅将部分聚集的Al-NP被加热至1100 k并且其余系统保持在300k时。在这里,多 - 百万原子分子动力学(MD)模拟显示不同直径(D = 26,36和46nm)聚合系统的烧结/聚结现象。针对不同层和不同的直径聚集系统研究了各种消费的芯铝速率。从AlO和AlO_2中间体确认壳外(最大共价键合氧化铝簇)结构的Al_2O_3片段的形成。较小的Al-NPS尺寸的尺寸导致从富人到富人的过渡趋势更快,以适合大多数小型簇。然而,更多的核铝与壳氧导致壳体氧的速率更快地减小壳体片段中的壳体片段中的O / Al比率。

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