首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE2008 >QUALITATIVE STUDY OF NANOCLUSTER POSITIONING PROCESS: 2D MOLECULAR DYNAMICS SIMULATIONS
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QUALITATIVE STUDY OF NANOCLUSTER POSITIONING PROCESS: 2D MOLECULAR DYNAMICS SIMULATIONS

机译:纳米簇定位过程的定性研究:二维分子动力学模拟

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One of the key factors in the assembly of nanocluslers is the precise positioning of them by a manipulation system. Currently the size of clusters used as building blocks is shrinking down to a few nanometers. In such cases, the particle nature of matter plays an important role in the manipulator/cluster/substrate interactions. Having a deeper insight to the aforementioned nanoscale interactions is crucial for prediction and understanding of the behavior of nanoclusters during the positioning process. In the present research. 2D molecular dynamics simulations have been used to investigate such behaviors. Performing planar simulations can provide a fairly acceptable qualitative tool for our purpose while the computation time is greatly reduced in comparison to 3D simulations. The system consists of a tip, cluster and substrate. The focus of the present research is on ultra-fine metallic nanoclusters. To perform this research, Nose-Hoover dynamics and Sutton-Chen interatomic potential will be used to investigate the behavior of the above system which is made from different transition metals. The effects of material type, tip form and manipulation strategy on the success of the process have been investigated by planar molecular dynamics. Such qualitative simulation studies can evaluate the chance of success of a certain nanopositioning scenario regarding different working conditions before consuming large-scale computation time or high experimental expenses.
机译:组装纳米簇的关键因素之一是通过操纵系统对其进行精确定位。当前,用作构建块的簇的大小正在缩小到几纳米。在这种情况下,物质的颗粒性质在操纵器/簇/底物的相互作用中起着重要的作用。对上述纳米级相互作用的深入了解对于预测和理解纳米簇在定位过程中的行为至关重要。在目前的研究中。 2D分子动力学模拟已用于研究此类行为。进行平面仿真可以为我们的目的提供一个相当可接受的定性工具,同时与3D仿真相比,可以大大减少计算时间。该系统由尖端,簇和基底组成。本研究的重点是超细金属纳米团簇。为了进行这项研究,将使用Nose-Hoover动力学和Sutton-Chen原子间电势来研究由不同过渡金属制成的上述系统的行为。通过平面分子动力学研究了材料类型,尖端形状和操纵策略对过程成功的影响。这样的定性模拟研究可以在消耗大量计算时间或高昂实验费用之前,评估有关不同工作条件的特定纳米定位方案的成功机会。

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