论文标题
各向异性核壳和空心微凝胶的界面组装
Interfacial assembly of anisotropic core-shell and hollow microgels
论文作者
论文摘要
微凝胶,具有亚微米尺寸的交联聚合物是理想的软模型系统。尽管已经对球形微凝胶进行了广泛的研究,但几乎没有研究各向异性微凝胶。在这项研究中,我们比较各向异性核壳和空心微凝胶的界面变形和组装。核壳微凝胶由赤铁矿的椭圆形核心组成,上面覆盖有薄二氧化硅层和薄的壳壳。在无机核的两步蚀刻过程后获得了空心微凝胶。这些微凝胶在油水界面上的行为进行了研究,在与前抗AFM结合的Langmuir Blodgett槽中进行了研究。首先,通过实验和耗散粒子动态模拟研究了各向异性微凝胶对界面扩散的影响。因此,强调了局部壳厚度对侧面和纵向界面变形的重要性以及核心壳和空心结构之间的差异。分析了压缩等温线的形状以及在不同压缩处的微凝胶的尺寸,排序和方向。由于它们各向异性的形状和刚度,发现两个各向异性微凝胶都与优先的左右组装表现出显着的毛细管相互作用,从而在低界面覆盖范围内导致稳定的微凝胶簇。在更可变形的空心各向异性微凝胶的情况下,发现这种毛细血管相互作用减少。因此,与更硬的核壳微凝胶相比,在高表面压力下发现各向异性空心微凝胶的分布更加均匀。我们的发现强调了胶体设计,各向异性和界面组件上的柔软性之间的复杂相互作用,以及它为创建更复杂有序界面提供的机会。
Microgels, cross-linked polymers with submicrometer size, are ideal soft model systems. While spherical microgels have been studied extensively, anisotropic microgels have been hardly investigated. In this study, we compare the interfacial deformation and assembly of anisotropic core-shell and hollow microgels. The core-shell microgel consists of an elliptical core of hematite covered with a thin silica layer and a thin shell made of PNiPAM. The hollow microgels were obtained after a two step etching procedure of the inorganic core. The behavior of these microgels at the oil-water interface was investigated in a Langmuir Blodgett trough combined with ex-situ AFM. First, the influence of the architecture of anisotropic microgels on their spreading at the interface was investigated experimentally and by dissipative particle dynamic simulations. Hereby, the importance of the local shell thickness on the lateral and longitudinal interfacial deformation was highlighted as well as the differences between the core-shell and hollow architectures. The shape of the compression isotherms as well as the dimensions, ordering and orientation of the microgels at the different compressions were analysed. Due to their anisotropic shape and stiffness, both anisotropic microgels were found to exhibit significant capillary interactions with a preferential side-to-side assembly leading to stable microgel clusters at low interfacial coverage. Such capillary interactions were found to decrease in the case of the more deformable hollow anisotropic microgels. Consequently, anisotropic hollow microgels were found to distribute more evenly at high surface pressure compared to stiffer core-shell microgels. Our findings emphasize the complex interplay between the colloid design, anisotropy and softness on the interfacial assembly and the opportunities it thus offers to create more complex ordered interfaces.