Danov K D, Kralchevska S D, Kralchevsky P A, Ananthapadmanabhan K P, Lips A
Laboratory of Chemical Physics & Engineering, Faculty of Chemistry, University of Sofia, 1 J. Bourchier Avenue, 1164 Sofia, Bulgaria.
Langmuir. 2004 Jun 22;20(13):5445-53. doi: 10.1021/la049576i.
Here, we present experimental surface-tension isotherms of mixed solutions of two surfactants, sodium dodecyl sulfate (SDS) and cocoamidopropyl betaine (Betaine), measured by means of the Wilhelmy plate method. The kinetics of surface-tension relaxation exhibits two characteristic time scales, which have been distinguished to determine correctly the equilibrium surface tension. The transition from the zwitterionic to the cationic form of Betaine is detected by surface-tension measurements. Synergistic dependence of the critical micellization concentration on the composition of the surfactant blend is established. The experimental surface-tension isotherms are fitted by means of the two-component van der Waals model, and an excellent agreement between theory and experiment was achieved. Having determined the parameters of the model, we calculated different properties of the mixed surfactant adsorption layer at various concentrations ofSDS, Betaine, and salt. Such properties are the adsorptions ofthe two surfactants, the surface dilatational elasticity, the occupancy of the Stern layer by bound counterions, the surface electric potential, and so forth. In particular, the addition of a small amount of Betaine to SDS significantly increases the surface elasticity. The results could be further applied to predict the thickness and stability of foam films or the size of the rodlike micelles in the mixed solutions of SDS and Betaine.
在此,我们展示了通过威尔海姆平板法测量的两种表面活性剂——十二烷基硫酸钠(SDS)和椰油酰胺丙基甜菜碱(甜菜碱)混合溶液的实验表面张力等温线。表面张力松弛动力学呈现出两个特征时间尺度,已对其加以区分以正确确定平衡表面张力。通过表面张力测量检测到甜菜碱从两性离子形式向阳离子形式的转变。确定了临界胶束浓度对表面活性剂混合物组成的协同依赖性。实验表面张力等温线通过双组分范德华模型进行拟合,理论与实验之间取得了极佳的一致性。在确定模型参数后,我们计算了在不同浓度的SDS、甜菜碱和盐条件下混合表面活性剂吸附层的不同性质。这些性质包括两种表面活性剂的吸附、表面膨胀弹性、结合抗衡离子在斯特恩层的占有率、表面电势等等。特别地,向SDS中添加少量甜菜碱会显著提高表面弹性。这些结果可进一步应用于预测泡沫膜的厚度和稳定性或SDS与甜菜碱混合溶液中棒状胶束的尺寸。