Laboratory of Physical Chemistry, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, the Netherlands.
Laboratory of Physical Chemistry, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, the Netherlands; Center for Multiscale Electron Microscopy, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, the Netherlands.
J Colloid Interface Sci. 2022 Dec;627:827-837. doi: 10.1016/j.jcis.2022.06.179. Epub 2022 Jul 13.
Core-corona supracolloids can be assembled in aqueous dispersions by controlling the physical interactions between the corona and core colloidal particles. A raspberry corona configuration with full surface coverage of the core can be reached by inducing strong attractive interactions between the individual particles. A controlled partial surface coverage of the core, i.e. strawberry configuration, is however, more difficult to achieve. Supracolloids with different surface coverage ratio exhibit unique and multifunctional surface properties.
By counterbalancing the multiple physical interactions playing a role during the assembly, the configuration and stability of the assemblies could be fine-tuned over a wide range of concentrations. Supracolloids consisting of polyethylene glycol (PEO)-grafted polymer particles covered by silica nanoparticles were assembled with different configurations, by adjusting the pH and ionic strength of the dispersion, the PEO grafting density and the particles concentration. The self-assembly process and resulting configurations were monitored via cryogenic transmission electron microscopy (Cryo-TEM) and light scattering.
The suitable conditions to assemble supracolloids with partial corona coverage have been established. Stable strawberry supracolloids could be prepared, both for diluted (1 wt%) and concentrated (12 wt%) dispersions. These hybrid supracolloids with well-defined configuration are highly relevant to developing advanced water-borne paints and inks, food dispersions, cosmetic and healthcare products.
通过控制冠层和核胶体粒子之间的物理相互作用,可以在水基分散体中组装核-冠超胶体。通过诱导颗粒间的强吸引力相互作用,可以达到完全覆盖核的覆盆子状冠层结构。然而,更难实现核的受控部分表面覆盖,即草莓状结构。具有不同表面覆盖率的超胶体表现出独特的多功能表面性质。
通过平衡在组装过程中起作用的多种物理相互作用,可以在很宽的浓度范围内对组装体的结构和稳定性进行微调。通过调整分散体的 pH 值和离子强度、PEO 接枝密度和粒子浓度,组装了由聚乙二醇(PEO)接枝聚合物粒子覆盖二氧化硅纳米粒子组成的具有不同结构的超胶体。通过低温透射电子显微镜(Cryo-TEM)和光散射监测自组装过程和得到的结构。
已经确定了组装具有部分冠层覆盖的超胶体的合适条件。可以制备稳定的草莓状超胶体,无论是在稀释(1wt%)还是浓缩(12wt%)的分散体中。这些具有明确定义结构的混合超胶体对于开发先进的水基涂料和油墨、食品分散体、化妆品和保健品非常重要。