Vialetto Jacopo, Camerin Fabrizio, Ramakrishna Shivaprakash N, Zaccarelli Emanuela, Isa Lucio
Laboratory for Soft Materials and Interfaces, Department of Materials, ETH Zürich, Vladimir-Prelog-Weg 5, Zürich, 8093, Switzerland.
CNR Institute for Complex Systems, Uos Sapienza, P.le A. Moro 2, Roma, 00185, Italy.
Adv Sci (Weinh). 2023 Oct;10(28):e2303404. doi: 10.1002/advs.202303404. Epub 2023 Aug 4.
The encapsulation of a rigid core within a soft polymeric shell allows obtaining composite colloidal particles that retain functional properties, e.g., optical or mechanical. At the same time, it favors their adsorption at fluid interfaces with a tunable interaction potential to realize tailored two-dimensional (2D) materials. Although they have already been employed for 2D assembly, the conformation of single particles, which is essential to define the monolayer properties, has been largely inferred via indirect or ex situ techniques. Here, by means of in situ atomic force microscopy experiments, the authors uncover the interfacial morphology of hard-core soft-shell microgels, integrating the data with numerical simulations to elucidate the role of the core properties, of the shell thicknesses, and that of the grafting density. They identify that the hard core can influence the conformation of the polymer shells. In particular, for the case of small shell thickness, low grafting density, or poor core affinity for water, the core protrudes more into the organic phase, and the authors observe a decrease in-plane stretching of the network at the interface. By rationalizing their general wetting behavior, such composite particles can be designed to exhibit specific inter-particle interactions of importance both for the stabilization of interfaces and for the fabrication of 2D materials with tailored functional properties.
将刚性核封装在柔软的聚合物壳内能够得到具有功能特性(如光学或机械特性)的复合胶体颗粒。同时,这有利于它们以可调的相互作用势吸附在流体界面上,从而实现定制的二维(2D)材料。尽管它们已被用于二维组装,但对于定义单层特性至关重要的单个颗粒的构象,很大程度上是通过间接或非原位技术推断出来的。在此,作者借助原位原子力显微镜实验,揭示了硬核软壳微凝胶的界面形态,并将数据与数值模拟相结合,以阐明核特性、壳厚度和接枝密度的作用。他们发现硬核会影响聚合物壳的构象。特别是,在壳厚度小、接枝密度低或核与水的亲和力差的情况下,核会更多地突出到有机相中,作者观察到界面处网络的面内拉伸减小。通过合理化它们的一般润湿行为,可以设计此类复合颗粒以展现特定的颗粒间相互作用,这对于界面稳定以及制备具有定制功能特性的二维材料都很重要。