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应用于界面胶体流体的基于闭包的密度泛函理论。

Closure-based density functional theory applied to interfacial colloidal fluids.

作者信息

Lu Mingqing, Bevan Michael A, Ford David M

机构信息

Department of Chemical Engineering, Texas A&M University, College Station, TX 77843-3122, USA.

出版信息

Langmuir. 2007 Dec 4;23(25):12481-8. doi: 10.1021/la701723b. Epub 2007 Oct 31.

Abstract

The behavior of dense colloidal fluids near surfaces can now be probed in great detail with experimental techniques like confocal microscopy. In fact, we are approaching a point where quantitative comparisons of experiment with particle-level theory, such as classical density functional theory (DFT), are appropriate. In a forward sense, we may use a known surface potential to predict a particle density distribution function from DFT; in an inverse sense, we may use an experimentally measured particle density distribution function to predict the underlying surface potential from DFT. In this paper, we tested the ability of the closure-based DFT of Zhou and Ruckenstein (J. Chem. Phys. 2000, 112, 8079-8082) to perform forward and inverse calculations on potential models commonly employed for colloidal particles and surfaces. To reduce sources of uncertainty in this initial study, Monte Carlo simulation results played the role of experimental data. The combination of Rogers-Young and modified-Verlet closures consistently performed well across the different potential models. For a reasonable range of choices of the density, temperature, and potential parameters, the inversion procedure yielded particle-surface potentials to an accuracy on the order of 0.1kT.

摘要

如今,利用共聚焦显微镜等实验技术,可以非常详细地探究稠密胶体流体在表面附近的行为。事实上,我们正逐渐接近一个阶段,在这个阶段,对实验与粒子水平理论(如经典密度泛函理论(DFT))进行定量比较是合适的。从正向来看,我们可以使用已知的表面势从DFT预测粒子密度分布函数;从反向来看,我们可以使用实验测量的粒子密度分布函数从DFT预测潜在的表面势。在本文中,我们测试了Zhou和Ruckenstein基于封闭的DFT(《化学物理杂志》,2000年,第112卷,8079 - 8082页)对胶体颗粒和表面常用势模型进行正向和反向计算的能力。为了减少这项初步研究中的不确定性来源,蒙特卡罗模拟结果起到了实验数据的作用。在不同的势模型中,Rogers - Young和修正的Verlet封闭的组合始终表现良好。对于密度、温度和势参数的合理选择范围,反演过程得到的粒子 - 表面势的精度约为0.1kT。

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