Wilhelmsen Øivind, Bedeaux Dick, Reguera David
Department of Chemistry, Norwegian University of Science and Technology, NO-7491 Trondheim, Norway.
Departament de Física Fonamental, Universitat de Barcelona, Martí i Franquès 1, Barcelona, Spain.
J Chem Phys. 2015 Feb 14;142(6):064706. doi: 10.1063/1.4907588.
It is well-known that the surface tension of small droplets and bubbles deviates significantly from that at the planar interface. In this work, we analyze the leading corrections in the curvature expansion of the surface tension, i.e., the Tolman length and the rigidity constants, using a "hybrid" square gradient theory, where the local Helmholtz energy density is described by an accurate equation of state. We particularize this analysis for the case of the truncated and shifted Lennard-Jones fluid, and are then able to reproduce the surface tensions and Tolman length from recent molecular dynamics simulations within their accuracy. The obtained constants in the curvature expansion depend little on temperature, except in the vicinity of the critical point. When the bubble/droplet radius becomes comparable to the interfacial width at coexistence, the critical bubble/droplet prefers to change its density, rather than to decrease its size, and the curvature expansion is no longer sufficient to describe the change in surface tension. We find that the radius of the bubble/droplet in this region is proportional to the correlation length between fluctuations in the liquid-phase.
众所周知,小液滴和气泡的表面张力与平面界面处的表面张力有显著偏差。在这项工作中,我们使用一种“混合”平方梯度理论分析表面张力曲率展开中的主要修正项,即托尔曼长度和刚性常数,其中局部亥姆霍兹能量密度由精确的状态方程描述。我们针对截断和位移的 Lennard-Jones 流体的情况进行了这种分析,然后能够在其精度范围内从最近的分子动力学模拟中重现表面张力和托尔曼长度。曲率展开中得到的常数除了在临界点附近外,对温度的依赖性很小。当气泡/液滴半径与共存时的界面宽度相当时,临界气泡/液滴更倾向于改变其密度,而不是减小其尺寸,并且曲率展开不再足以描述表面张力的变化。我们发现该区域中气泡/液滴的半径与液相中涨落之间的关联长度成正比。