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受限狭缝孔中模型表面活性剂溶液吸附的吉布斯系综蒙特卡洛模拟

Gibbs ensemble Monte Carlo simulation of adsorption for model surfactant solution in confined slit pores.

作者信息

Liu Lili, Yang Xiaoning, Xu Zhijun

机构信息

State Key Laboratory of Material-Orientated Chemical Engineering, Nanjing University of Technology, Nanjing, People's Republic of China.

出版信息

J Chem Phys. 2008 May 14;128(18):184712. doi: 10.1063/1.2919556.

Abstract

An isobaric-isothermal Gibbs ensemble Monte Carlo simulation has been carried out to study the adsorption of a model surfactant/solvent mixture in slit nanopores. The adsorption isotherms, the density distributions, and the configuration snapshots were simulated to illustrate the adsorption and self-assembly behaviors of the surfactant in the confined pores. The adsorption isotherms are stepwise: a two-step curve for the smaller (30 A) pore and a three-step one for the larger (50 A) pore. The adsorption isotherms and the interfacial aggregate structure of the surfactants in the pores with various sizes show a qualitatively consistent performance with the previous experimental observation. The micelle size distributions of the adsorbed surfactant aggregates have been analyzed in order to understand the adsorption mechanism, which suggests that the step rise in the surfactant adsorption is associated with the considerable formation of the micelle aggregates in the confined pores. The effect of the interaction between the pore surface and the surfactant on the adsorption behavior has also been investigated. The simulation results indicate that a change in the interaction can modify the shape of adsorption isotherms. A nonlinear mathematical model was used to represent the multistep adsorption isotherms. A good agreement between the model fitting and the simulation data was obtained for both the amount of adsorption and the jump point concentration.

摘要

已进行了等压等温吉布斯系综蒙特卡罗模拟,以研究模型表面活性剂/溶剂混合物在狭缝纳米孔中的吸附情况。模拟了吸附等温线、密度分布和构型快照,以说明表面活性剂在受限孔中的吸附和自组装行为。吸附等温线呈阶梯状:较小(30 Å)孔的为两步曲线,较大(50 Å)孔的为三步曲线。不同尺寸孔中表面活性剂的吸附等温线和界面聚集体结构与先前的实验观察结果在定性上表现一致。分析了吸附的表面活性剂聚集体的胶束尺寸分布,以了解吸附机理,这表明表面活性剂吸附的阶梯式上升与受限孔中胶束聚集体的大量形成有关。还研究了孔表面与表面活性剂之间的相互作用对吸附行为的影响。模拟结果表明,相互作用的变化可以改变吸附等温线的形状。使用非线性数学模型来表示多步吸附等温线。在吸附量和跳跃点浓度方面,模型拟合与模拟数据之间均取得了良好的一致性。

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