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不可逆吸附的非离子表面活性剂和阴离子表面活性剂在油/水界面的顺序吸附。

Sequential adsorption of an irreversibly adsorbed nonionic surfactant and an anionic surfactant at an oil/aqueous interface.

作者信息

Kirby Stephanie M, Anna Shelley L, Walker Lynn M

机构信息

Department of Chemical Engineering, Center for Complex Fluids Engineering, Carnegie Mellon University, Pittsburgh, Pennsylvania 15213, United States.

出版信息

Langmuir. 2015 Apr 14;31(14):4063-71. doi: 10.1021/la504969v. Epub 2015 Apr 2.

DOI:10.1021/la504969v
PMID:25798716
Abstract

Aerosol-OT (AOT) and Tween 80 are two of the main surfactants in commercial dispersants used in response to oil spills. Understanding how multicomponent surfactant systems interact at oil/aqueous interfaces is crucial for improving both dispersant design and application efficacy. This is true of many multicomponent formulations; a lack of understanding of competition for the oil/water interface hinders formulation optimization. In this study, we have characterized the sequential adsorption behavior of AOT on squalane/aqueous interfaces that have been precoated with Tween 80. A microtensiometer is used to measure the dynamic interfacial tension of the system. Tween 80 either partially or completely irreversibly adsorbs to squalane/aqueous interfaces when rinsed with deionized water. These Tween 80 coated interfaces are then exposed to AOT. AOT adsorption increases with AOT concentration for all Tween 80 coverages, and the resulting steady-state interfacial tension values are interpreted using a Langmuir isotherm model. In the presence of 0.5 M NaCl, AOT adsorption significantly increases due to counterion charge screening of the negatively charged head groups. The presence of Tween 80 on the interface inhibits AOT adsorption, reducing the maximum surface coverage as compared to a clean interface. Tween 80 persists on the interface even after exposure to high concentrations of AOT.

摘要

气溶胶-OT(AOT)和吐温80是应对石油泄漏的商业分散剂中两种主要的表面活性剂。了解多组分表面活性剂体系在油/水界面的相互作用对于改进分散剂设计和应用效果至关重要。许多多组分配方都是如此;对油/水界面竞争的缺乏了解阻碍了配方优化。在本研究中,我们表征了AOT在预先涂有吐温80的角鲨烷/水界面上的顺序吸附行为。使用微张力计测量系统的动态界面张力。用去离子水冲洗时,吐温80会部分或完全不可逆地吸附到角鲨烷/水界面上。然后将这些涂有吐温80的界面暴露于AOT中。对于所有吐温80覆盖度,AOT的吸附量随AOT浓度增加,并且使用朗缪尔等温线模型解释所得的稳态界面张力值。在存在0.5 M NaCl的情况下,由于带负电荷的头部基团的抗衡离子电荷屏蔽,AOT的吸附量显著增加。界面上吐温80的存在会抑制AOT的吸附,与清洁界面相比,降低了最大表面覆盖度。即使暴露于高浓度的AOT后,吐温80仍会保留在界面上。

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