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通过调节胶体相互作用控制超粒子的形状和结构。

Controlling supraparticle shape and structure by tuning colloidal interactions.

机构信息

School of Chemical Engineering, Dalian University of Technology, Linggong Road 2, Dalian 116024, PR China; Department of Physics at Interfaces, Max Planck Institute for Polymer Research, Ackermannweg 10, D-55128 Mainz, Germany.

Department of Physics at Interfaces, Max Planck Institute for Polymer Research, Ackermannweg 10, D-55128 Mainz, Germany.

出版信息

J Colloid Interface Sci. 2022 Feb;607(Pt 2):1661-1670. doi: 10.1016/j.jcis.2021.09.035. Epub 2021 Sep 8.

Abstract

HYPOTHESIS

Assembly of colloids in drying colloidal suspensions on superhydrophobic surface is influenced by the colloidal interactions, which determine the shape and interior structure of the assembled supraparticle. The introduction of salt (electrolyte) into the assembly system is expected to influence the colloid interactions and packing during the evaporation process. Hence, both the outer shape and internal structure of supraparticles should be controlled by varying salt concentrations.

EXPERIMENTS

Suspensions of electrostatically stabilized polystyrene particles with specified salt concentrations were chosen as model systems to conduct the evaporation on a superhydrophobic surface. A systematic study was performed by regulating the concentration and valency of salt. The morphology and interior of supraparticles were carefully characterized with electron scanning microscopy, while the colloidal interaction was established using colloidal probe atomic force microscopy.

FINDINGS

Supraparticles displayed a spherical-to-nonspherical shape change due to the addition of salts. The extent of crystallization depended on salt concentration. These changes in shape and structure were correlated with salt-dependent single colloid interaction forces, which were not previously investigated in detail in radially symmetric evaporation geometry. Our findings are crucial for understanding assembly behavior during the drying process and offer guidance for preparing complex supraparticles to meet specific applications requirement.

摘要

假设

在超疏水表面上干燥胶体悬浮液中胶体的聚集受到胶体相互作用的影响,这决定了组装的超粒子的形状和内部结构。向组装体系中引入盐(电解质)预计会影响蒸发过程中的胶体相互作用和堆积。因此,通过改变盐浓度应该可以控制超粒子的外部形状和内部结构。

实验

选择具有特定盐浓度的静电稳定聚苯乙烯颗粒悬浮液作为模型系统,在超疏水表面上进行蒸发。通过调节盐的浓度和价态,进行了系统研究。使用胶体探针原子力显微镜建立胶体相互作用,仔细用电子扫描显微镜对超粒子的形态和内部进行了表征。

发现

由于添加了盐,超粒子显示出球形到非球形的形状变化。结晶程度取决于盐的浓度。这些形状和结构的变化与盐依赖性的单个胶体相互作用力相关,这在以前的径向对称蒸发几何中没有被详细研究过。我们的发现对于理解干燥过程中的组装行为至关重要,并为制备满足特定应用要求的复杂超粒子提供了指导。

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