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聚维酮包覆的二氧化硅纳米颗粒在气液界面处的流变学性质。

The rheology of polyvinylpyrrolidone-coated silica nanoparticles positioned at an air-aqueous interface.

机构信息

School of Chemical and Process Engineering, University of Leeds, UK.

School of Chemical Engineering, The University of Queensland, Australia.

出版信息

J Colloid Interface Sci. 2018 Oct 1;527:346-355. doi: 10.1016/j.jcis.2018.05.035. Epub 2018 May 17.

DOI:10.1016/j.jcis.2018.05.035
PMID:29804004
Abstract

Particle-stabilized emulsions and foams are widely encountered, as such there remains a concerted effort to better understand the relationship between the particle network structure surrounding droplets and bubbles, and the rheology of the particle-stabilized interface. Poly(vinylpyrrolidone)-coated silica nanoparticles were used to stabilize foams. The shear rheology of planar particle-laden interfaces were measured using an interfacial shear rheometer and the rheological properties measured as a function of the sub-phase electrolyte concentration and surface pressure. All particle-laden interfaces exhibited a liquid-like to solid-like transition with increasing surface pressure. The surface pressure-dependent interfacial rheology was then correlated to the formed micron-scale structures of the particle-laden interfaces which were imaged using a Brewster angle microscope. With the baseline knowledge established, foams were prepared using the same composite particles and the particle network structure imaged using cryo-SEM. An attempt has been made to correlate the two structures observed at a planar interface and that surrounding a bubble to elucidate the likely rheology of the bubble stabilizing particle network. Independent of the sub-phase electrolyte concentration, the resulting rheology of the bubble stabilizing particle network was strongly elastic and appeared to be in a compression state at the region of the L-S phase transition.

摘要

粒子稳定的乳液和泡沫广泛存在,因此人们仍在努力更好地理解围绕液滴和气泡的粒子网络结构与粒子稳定界面的流变学之间的关系。聚(乙烯基吡咯烷酮)包覆的二氧化硅纳米粒子被用来稳定泡沫。使用界面剪切流变仪测量平面粒子负载界面的剪切流变学,并将测量的流变性质作为亚相电解质浓度和表面压力的函数。所有的粒子负载界面都表现出随着表面压力的增加从液态到固态的转变。然后,将表面压力依赖性界面流变学与使用布鲁斯特角显微镜成像的粒子负载界面的微米级结构相关联。在建立了基线知识之后,使用相同的复合粒子制备了泡沫,并使用冷冻扫描电子显微镜对粒子网络结构进行了成像。尝试将在平面界面上观察到的结构与围绕气泡的结构相关联,以阐明稳定气泡的粒子网络的可能流变学。独立于亚相电解质浓度,气泡稳定的粒子网络的所得流变学具有很强的弹性,并且在 L-S 相转变区域似乎处于压缩状态。

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