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Wetting behavior of spherical nanoparticles at a vapor-liquid interface: a density functional theory study

机译:球形纳米颗粒在气液界面的润湿行为:密度泛函理论研究

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摘要

The wetting behavior of spherical nanoparticles at a vapor-liquid interface is investigated by using density functional theory, and the line tension calculation method is modified by analyzing the total energy of the vapor-liquid-particle equilibrium. Compared with the direct measurement data from simulation, the results reveal that the thermodynamically consistent Young's equation for planar interfaces is still applicable for high curvature surfaces in predicting a wide range of contact angles. The effect of the line tension on the contact angle is further explored, showing that the contact angles given by the original and modified Young's equations are nearly the same within the region of 60° < θ < 120°. Whereas the effect is considerable when the contact angle deviates from the region. The wetting property of nanoparticles in terms of the fluid-particle interaction strength, particle size, and temperature is also discussed. It is found that, for a certain particle, a moderate fluid-particle interaction strength would keep the particle stable at the interface in a wide temperature range.
机译:利用密度泛函理论研究了球形纳米颗粒在气液界面的润湿行为,并通过分析气液颗粒平衡的总能量来修正线张力计算方法。与来自仿真的直接测量数据相比,结果表明,平面界面的热力学一致杨氏方程式仍适用于高曲率表面,可预测宽范围的接触角。进一步探讨了线张力对接触角的影响,表明原始和改进的杨氏方程式给出的接触角在60°<θ<120°区域内几乎相同。而当接触角偏离该区域时,效果是显着的。还讨论了根据流体-颗粒相互作用强度,颗粒大小和温度的纳米颗粒的润湿特性。发现对于一定的颗粒,适度的流体-颗粒相互作用强度将使颗粒在较宽的温度范围内在界面处保持稳定。

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