Echeverría Coro, Mijangos Carmen
Instituto de Ciencia y Tecnología de Polímeros (ICTP-CSIC), C/Juan de la Cierva 3, 28006 Madrid, Spain.
Polymers (Basel). 2022 Mar 22;14(7):1279. doi: 10.3390/polym14071279.
The ability of polymer microgels to rapidly respond to external stimuli is of great interest in sensors, lubricants, and biomedical applications, among others. In most of their uses, microgels are subjected to shear, deformation, and compression forces or a combination of them, leading to variations in their rheological properties. This review article mainly refers to the rheology of microgels, from the hard sphere versus soft particles' model. It clearly describes the scaling theories and fractal structure formation, in particular, the Shih et al. and Wu and Morbidelli models as a tool to determine the interactions among microgel particles and, thus, the viscoelastic properties. Additionally, the most recent advances on the characterization of microgels' single-particle interactions are also described. The review starts with the definition of microgels, and a brief introduction addresses the preparation and applications of microgels and hybrid microgels.
聚合物微凝胶对外部刺激的快速响应能力在传感器、润滑剂和生物医学应用等领域引起了极大的关注。在其大多数应用中,微凝胶会受到剪切力、变形力和压缩力或它们的组合作用,从而导致其流变性质发生变化。这篇综述文章主要从硬球与软颗粒模型的角度探讨微凝胶的流变学。它清晰地描述了标度理论和分形结构的形成,特别是将Shih等人以及Wu和Morbidelli模型作为确定微凝胶颗粒间相互作用以及粘弹性性质的工具。此外,还介绍了微凝胶单颗粒相互作用表征方面的最新进展。综述从微凝胶的定义开始,简短介绍了微凝胶和杂化微凝胶的制备及应用。