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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Macromolecular Sample Sputtering by Large Ar and CH4 Clusters: Elucidating Chain Size and Projectile Effects with Molecular Dynamics
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Macromolecular Sample Sputtering by Large Ar and CH4 Clusters: Elucidating Chain Size and Projectile Effects with Molecular Dynamics

机译:大型Ar和CH4团簇的大分子样品溅射:通过分子动力学阐明链大小和弹丸效应

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This article reports the latest developments of our theoretical studies of gas cluster bombardment of model macromolecular samples using molecular dynamics simulations. Here, we perform a detailed comparison of the effects of the sample molecular weight, the Ar cluster incidence angle (45 vs 0), and the cluster nature (CH4 vs Ar) on the soft sputtering of polymeric samples. The results of Ar cluster-induced sputtering and fragmentation at 45 incidence for molecular targets with three different molecular weights (282, 1388, and 14002 amu) indicate a pronounced influence of that parameter beyond 1000 amu, which is explained by the extra energy needed to form fragments from longer chains and to overcome mechanical entanglement. An excellent agreement is found between the computed statistics of sputtering and the available experimental data for similar molecular weights. The variance of the sputtering and polymer fragmentation results with changing beam parameters is explained via the microscopic analysis of the interaction in the simulations. The influential physical quantities are identified, namely, the energy (density) deposited in the impact region, the projectile velocity, and the geometry of the impact. The lower sputtering efficiency of CH4 molecular clusters results mainly from the extra energy spent in covalent bond-breaking and vibrational excitation of the cluster constituents
机译:本文报告了我们使用分子动力学模拟对模型大分子样品进行气体簇轰击的理论研究的最新进展。在这里,我们对聚合物分子量的软溅射进行了样品分子量,Ar团簇入射角(45 vs 0)和团簇性质(CH4 vs Ar)的影响的详细比较。具有三种不同分子量(282、1388和14002 amu)的分子靶标在45入射角下Ar团簇诱导的溅射和断裂的结果表明,该参数对1000 amu以上有明显的影响,这可以解释为:从较长的链中形成碎片并克服机械缠结。在计算得出的溅射统计数据与类似分子量的可用实验数据之间发现了一个极好的协议。溅射和聚合物破碎结果随光束参数变化的变化通过模拟中相互作用的微观分析来解释。确定有影响的物理量,即沉积在冲击区域中的能量(密度),弹丸速度和冲击的几何形状。 CH4分子簇的溅射效率较低主要是由于在簇组分的共价键断裂和振动激发上花费了额外的能量

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