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强制相互作用:带电表面活性剂界面处的离子聚合物

Forced Interactions: Ionic Polymers at Charged Surfactant Interfaces.

作者信息

Garrett Paul, Shirley Joseph C, Baiz Carlos R

机构信息

Department of Chemistry, The University of Texas at Austin, Austin, Texas 78712, United States.

出版信息

J Phys Chem B. 2023 Mar 30;127(12):2829-2836. doi: 10.1021/acs.jpcb.2c08636. Epub 2023 Mar 16.

Abstract

Characterizing electrostatic interactions at heterogeneous interfaces is critical for developing a fundamental description of the dynamic processes at charged interfaces. Water-in-oil reverse micelles (RMs) offer a high degree of tunability across composition, polarity, and temperature, making them ideal systems for studying interactions at heterogeneous liquid-liquid interfaces. In the present study, we use a combination of ultrafast two-dimensional infrared spectroscopy and molecular dynamics (MD) simulations to determine the picosecond interfacial dynamics in RMs containing binary compositions of sorbitan monostearate and anionic or cationic cosurfactants, which are used to tune the ratio of charged to nonionic surfactants at the interface. The positively charged polyethylenimine (PEI) polymer is encapsulated within the RMs, and the carbonyl stretching mode of sorbitan monostearate reports on the interfacial hydrogen-bond populations and dynamics. The results show that hydrogen-bond populations are altered through the inclusion of both negatively and positively charged cosurfactants. Charged surfactants increase interfacial water penetration into the surfactant layer, and the surface localization of polymers decreases water penetration. Local hydrogen-bond dynamics undergo a slowdown with the inclusion of charged surfactants, and the encapsulation of polymers results in similar effects, irrespective of the charge.

摘要

表征异质界面处的静电相互作用对于深入理解带电界面的动态过程至关重要。油包水反胶束(RMs)在组成、极性和温度方面具有高度的可调性,使其成为研究异质液 - 液界面相互作用的理想体系。在本研究中,我们结合超快二维红外光谱和分子动力学(MD)模拟,来确定含有山梨醇单硬脂酸酯与阴离子或阳离子辅助表面活性剂二元组成的反胶束中的皮秒级界面动力学,这些辅助表面活性剂用于调节界面处带电与非离子表面活性剂的比例。带正电的聚乙烯亚胺(PEI)聚合物被包裹在反胶束中,山梨醇单硬脂酸酯的羰基伸缩模式反映了界面氢键的数量和动力学。结果表明,通过加入带负电和带正电的辅助表面活性剂,氢键数量都会发生改变。带电表面活性剂增加了界面水向表面活性剂层的渗透,而聚合物的表面定位则降低了水的渗透。加入带电表面活性剂后,局部氢键动力学减缓,并且聚合物的包裹也会产生类似的效果,而与电荷无关。

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