Laboratory for Interfaces, Soft Matter and Assembly, Department of Materials, ETH Zurich, Vladimir-Prelog Weg 5, 8093 Zürich, Switzerland.
Department of Polymer Interfaces, Leibniz Institute of Polymer Research, Hohe Strasse 6, D-01069 Dresden, Germany.
Nat Commun. 2017 Jun 7;8:15701. doi: 10.1038/ncomms15701.
Surface heterogeneities, including roughness, significantly affect the adsorption, motion and interactions of particles at fluid interfaces. However, a systematic experimental study, linking surface roughness to particle wettability at a microscopic level, is currently missing. Here we synthesize a library of all-silica microparticles with uniform surface chemistry, but tuneable surface roughness and study their spontaneous adsorption at oil-water interfaces. We demonstrate that surface roughness strongly pins the particles' contact lines and arrests their adsorption in long-lived metastable positions, and we directly measure the roughness-induced interface deformations around isolated particles. Pinning imparts tremendous contact angle hysteresis, which can practically invert the particle wettability for sufficient roughness, irrespective of their chemical nature. As a unique consequence, the same rough particles stabilize both water-in-oil and oil-in-water emulsions depending on the phase they are initially dispersed in. These results both shed light on fundamental phenomena concerning particle adsorption at fluid interfaces and indicate future design rules for particle-based emulsifiers.
表面不均匀性,包括粗糙度,显著影响颗粒在流体界面的吸附、运动和相互作用。然而,目前缺少一种将表面粗糙度与微观水平上的颗粒润湿性联系起来的系统实验研究。在这里,我们合成了一系列具有均匀表面化学性质但可调节表面粗糙度的全硅微颗粒,并研究了它们在油水界面的自发吸附。我们证明,表面粗糙度强烈固定颗粒的接触线,并将其吸附固定在长时间存在的亚稳位置,并且我们直接测量了围绕孤立颗粒的粗糙度诱导的界面变形。固定赋予了巨大的接触角滞后,对于足够的粗糙度,实际上可以反转颗粒的润湿性,而与它们的化学性质无关。作为一个独特的结果,相同的粗糙颗粒根据它们最初分散的相,稳定水包油和油包水乳液。这些结果不仅阐明了有关颗粒在流体界面上吸附的基本现象,还为基于颗粒的乳化剂的未来设计规则指明了方向。