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Computational simulations of solvation force and squeezing out of dodecane chain molecules in an atomic force microscope

机译:原子力显微镜中溶剂化力和挤出十二烷链分子挤出的计算模拟

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Understanding the squeeze out behaviors of liquid films at nanometer scale in an atomic force microscope (AFM) has been a significant interest since the 1990s. We carry out all-atom static-mode AFM simulations in a liquid-vapor molecular dynamics ensemble to investigate the solvation force oscillation and squeeze out mechanisms of a confined linear dodecane fluid between a gold AFM tip and a mica substrate. Solvation force oscillations are found to be associated with the layering transition of the liquid film and unstable jumps of the AFM tip. Detailed structural analyses and molecular animations show that the local permeation of chain molecules and the squeeze out of molecules near the edge of contact promote the layering transition under compression. The confinement-induced slow down dynamics is manifested by the decrease in diffusivity and increase in rotational relaxation times. However, the persistent diffusive behavior of dodecane chain molecules even in the single-monolayer film is attributed to the chain sliding motions in the film due to the substantial vacancy space and thermal fluctuations. Published by AIP Publishing.
机译:理解自20世纪90年代以来,原子力显微镜(AFM)中纳米尺度下液体膜的挤出行为是重要的兴趣。我们在液态蒸汽分子动力学中进行全原子静态模式AFM模拟,以研究溶剂化力振荡和挤出金AFM尖端和云母衬底之间的狭窄的线性十二烷流体的机制。发现溶剂化力振荡与液体膜的层状过渡和AFM尖端的不稳定跳跃相关联。详细的结构分析和分子动画表明,连锁分子的局部渗透和挤出接触边缘附近的分子挤出促进压缩下的分层过渡。限制诱导的慢衰弱动态表现为减少扩散率和旋转松弛时间的增加。然而,即使在单层膜中的十二烷链分子的持续扩散行为也归因于膜中的链条滑动运动,由于基本空间空间和热波动。通过AIP发布发布。

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