皮克林乳液
材料科学
化学工程
润湿
胶束
乳状液
杰纳斯粒子
吸附
两亲性
高分子化学
杰纳斯
纳米技术
共聚物
水溶液
聚合物
化学
有机化学
复合材料
工程类
作者
Xiaoyu Shi,Wangmeng Hou,Hanying Zhao
出处
期刊:Polymer
[Elsevier BV]
日期:2021-12-28
卷期号:240: 124487-124487
被引量:12
标识
DOI:10.1016/j.polymer.2021.124487
摘要
In Pickering emulsions, solid particles are adsorbed to the oil/water interface, and the dispersed oil or water droplets are stabilized by the particles. The adsorption and wettability of the particles at the liquid-liquid interface play key roles in Pickering emulsion. In this research, the application of the silica particles with responsive surface nanostructures in Pickering emulsion is investigated. Amphiphilic surface micelles (s-micelles) on the silica particles are prepared by polymerization induced surface self-assembly approach. In water, spherical s-micelles with PS cores and quaternized poly(2-(dimethylamino) ethyl methacrylate) (q-PDMAEMA) shells are formed on the silica particles. In toluene, layered surface structures with PS at the top surfaces and q-PDMAEMA embedded in the inner layers, are formed. The silica particles with amphiphilic s-micelles (SiO 2 -ASM) can be used as stabilizers in Pickering emulsion. Upon addition of SiO 2 -ASM into O/W emulsion, the interfacial tension decreases significantly, due to the residence of the silica particles at the liquid-liquid interfaces. At the interfaces, the silica particles present dynamic Janus surfaces. On the sides immersed in aqueous phase, hydrophilic surfaces are produced; on the other sides immersed in toluene phase, lipophilic surface structures are formed. Both of confocal laser scanning microscopy and scanning electron microscopy results demonstrate the formation of the silica particles armored liquid-liquid interfaces. • Responsive surface nanostructures were prepared on silica particles by PISSA approach. • The morphologies and the chemical compositions of the responsive surface nanostructures were analyzed. • The application of the silica particles with responsive surface nanostructures in Pickering emulsion was investigated. • The dynamic Janus surfaces of the silica particles at liquid-liquid interface were demonstrated.
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