Fameau Anne-Laure, Saint-Jalmes Arnaud
UR1268 Biopolymères Interactions Assemblages, Institut National de la Recherche Agronomique, rue de la Géraudière, F-44316 Nantes cedex 3, France.
Soft Matter. 2014 May 28;10(20):3622-32. doi: 10.1039/c3sm53001a. Epub 2014 Mar 24.
In this article, we show that stimuli-induced microscopic transformations of self-assembled surfactant structures can be used to tune the macroscopic bulk and interfacial rheological properties. Previously, we had described the formation of micron-sized 12-hydroxystearic acid tubes having a temperature-tunable diameter in the bulk, and also adsorbing at the air-water interface. We report now a detailed study of the bulk and interfacial rheological properties of this solution of thermoresponsive tubes as a function of temperature. In the bulk, the structural modifications of tubes with temperature lead to sharp and non-monotonous changes of rheological behavior. As well, at the air-water interface, the interfacial layer is shifted several times from rigid-like to fluid-like as the temperature is increased, due to morphological changes of the adsorbed interfacial layer. The temperature-induced variations in the fatty acid supramolecular organization and the richness in structural transitions at this microscopic level lead to unique rheological responses in comparison with conventional surfactant systems. Also, this study provides new insights into the required packing conditions for the jamming of anisotropic soft objects and highlights the fact that this system becomes glassy under heating. Due to these unique macroscopic properties both in the bulk and at the interface, this simple system with stimuli-responsive viscoelasticity is of interest for their potential applications in pharmacology or cosmetic formulations.
在本文中,我们表明,刺激诱导的自组装表面活性剂结构的微观转变可用于调节宏观体相和界面流变性质。此前,我们曾描述过在体相中形成具有温度可调直径的微米级12-羟基硬脂酸管,并且这些管也会吸附在空气-水界面。我们现在报告一项关于这种热响应管溶液的体相和界面流变性质随温度变化的详细研究。在体相中,管的结构随温度的变化导致流变行为急剧且非单调的变化。同样,在空气-水界面,随着温度升高,由于吸附界面层的形态变化,界面层会多次从类似刚性转变为类似流体。与传统表面活性剂体系相比,脂肪酸超分子组织中温度诱导的变化以及微观层面丰富的结构转变导致了独特的流变响应。此外,这项研究为各向异性软物体堵塞所需的堆积条件提供了新见解,并突出了该系统在加热下会变成玻璃态这一事实。由于在体相和界面处都具有这些独特的宏观性质,这种具有刺激响应粘弹性的简单系统因其在药理学或化妆品配方中的潜在应用而备受关注。