Mai Zhaohuan, Couallier Estelle, Rakib Mohammed, Rousseau Bernard
Laboratoire de Chimie-Physique, UMR 8000 CNRS, Université Paris-Sud, Orsay, France.
Laboratoire de Génie des Procédés et Matériaux, Ecole Centrale Paris, Grande Voie des Vignes, 92295 Châtenay-Malabry, France.
J Chem Phys. 2014 May 28;140(20):204902. doi: 10.1063/1.4875515.
A systematic approach to develop mesoscopic models for a series of linear anionic surfactants (CH3(CH2)n - 1OSO3Na, n = 6, 9, 12, 15) by dissipative particle dynamics (DPD) simulations is presented in this work. The four surfactants are represented by coarse-grained models composed of the same head group and different numbers of identical tail beads. The transferability of the DPD model over different surfactant systems is carefully checked by adjusting the repulsive interaction parameters and the rigidity of surfactant molecules, in order to reproduce key equilibrium properties of the aqueous micellar solutions observed experimentally, including critical micelle concentration (CMC) and average micelle aggregation number (Nag). We find that the chain length is a good index to optimize the parameters and evaluate the transferability of the DPD model. Our models qualitatively reproduce the essential properties of these surfactant analogues with a set of best-fit parameters. It is observed that the logarithm of the CMC value decreases linearly with the surfactant chain length, in agreement with Klevens' rule. With the best-fit and transferable set of parameters, we have been able to calculate the free energy contribution to micelle formation per methylene unit of -1.7 kJ/mol, very close to the experimentally reported value.
本文介绍了一种通过耗散粒子动力学(DPD)模拟为一系列线性阴离子表面活性剂(CH3(CH2)n - 1OSO3Na,n = 6、9、12、15)开发介观模型的系统方法。这四种表面活性剂由相同头基和不同数量相同尾珠组成的粗粒化模型表示。通过调整排斥相互作用参数和表面活性剂分子的刚性,仔细检查了DPD模型在不同表面活性剂体系中的可转移性,以再现实验观察到的胶束水溶液的关键平衡性质,包括临界胶束浓度(CMC)和平均胶束聚集数(Nag)。我们发现链长是优化参数和评估DPD模型可转移性的良好指标。我们的模型通过一组最佳拟合参数定性地再现了这些表面活性剂类似物的基本性质。观察到CMC值的对数随表面活性剂链长线性下降,这与克莱文斯规则一致。利用最佳拟合且可转移的参数集,我们能够计算出每个亚甲基单元对胶束形成的自由能贡献为-1.7 kJ/mol,非常接近实验报道的值。