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Catanionic surfactant systems-thermodynamic and structural conditions revisited

机译:阳离子表面活性剂系统-重新研究热力学和结构条件

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In this work, we review shortly the current state of knowledge about catanionic surfactant systems with a focus on the detailed understanding based on the molecular buildup of such systems and of the electrostatic interaction that controls their amphiphilic monolayer and bilayer. Particularly relevant here is the extent of hydrophobicity of the oppositely charged partners, which can range from just having a more or less hydrophobic counterion until a real surfactant of opposite charge. Based on this discussion, we then investigate different systems based on cetyltrimethylammonium (CTA) combined with either laurate (L) as an oppositely charged surfactant or naphthalenesulfonate (NS) as a strongly hydrophobic counterion. Both systems were studied for the case of having salt present by combining the two amphiphilic salts but also the salt-free situation which arises from combining the hydroxide with the acid. The phase behavior was determined as well as the mesoscopic structures present, as obtained by small-angle neutron scattering (SANS) and light scattering, which allow to discern formation of wormlike micelles and vesicles. Their presence was then further confirmed by rheological measurements, where in particular normal forces allow to distinguish the two types of aggregates, and control of rheology is a key property in such systems. In addition, the thermodynamic conditions in these systems were determined by means of differential scanning calorimetry (DSC). Based on these results, a consistent understanding of the formed structures and their macroscopic properties that arise from the molecular conditions in these systems is presented.
机译:在这项工作中,我们将简要回顾一下有关阳离子表面活性剂体系的知识,重点是基于对此类体系的分子结构以及控制其两亲性单层和双层的静电相互作用的详细理解。这里特别相关的是带相反电荷的配偶体的疏水性程度,其范围可以从仅具有或多或少的疏水性抗衡离子到具有相反电荷的真正的表面活性剂。基于此讨论,然后我们研究基于十六烷基三甲基铵(CTA)结合月桂酸酯(L)作为带相反电荷的表面活性剂或萘磺酸盐(NS)作为强疏水性抗衡离子的不同系统。对两种体系都研究了通过结合两种两亲性盐而存在盐的情况,还研究了由于氢氧化物与酸结合而产生的无盐情况。确定了相行为以及通过小角度中子散射(SANS)和光散射获得的介观结构,这些结构可以辨别蠕虫状胶束和囊泡的形成。然后通过流变学测量进一步证实了它们的存在,其中特别是法向力可以区分两种类型的聚集体,流变学控制是此类系统的关键特性。另外,这些系统中的热力学条件通过差示扫描量热法(DSC)确定。基于这些结果,提出了对形成的结构及其由这些系统中的分子条件引起的宏观性能的一致理解。

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