论文标题

非接触式界面流变学:通过荧光显微镜在没有界面几何形状的液态液体界面上探测剪切

Contactless Interfacial Rheology: Probing Shear at Liquid-Liquid Interfaces without an Interfacial Geometry via Fluorescence Microscopy

论文作者

Muntz, Iain, Richards, James A., Brown, Sam, Schofield, Andrew B., Rey, Marcel, Thijssen, Job H. J.

论文摘要

界面流变学对于理解诸如氨基乳液或泡沫稳定性之类的特性很重要。当前,使用直接连接到接口的探针测量响应。这既可以干扰界面,又可以在整体相中耦合,从而限制了其灵敏度。我们已经开发了一种非接触式界面方法,可以在液体/液体界面上执行界面剪切流性,而没有直接连接到界面上的工具。这是通过剪切一个液相并通过共聚焦显微镜测量界面反应来实现的。使用这种方法,我们测量了稳定的剪切材料参数,例如界面弹性模量,用于具有固体行为和用于流体样界面的界面粘度的接口。相对于双壁环几何形状,该方法的准确性已得到验证。此外,使用我们的非接触式方法,我们能够测量比以前使用双壁环几何形状报告的界面粘度较低。另一个优点是宏观流变分析与微观结构分析的同时组合。我们的分析直接可视化了界面响应与粒子表面覆盖率及其界面组件的密切相关性。此外,我们捕获了与稳定剪切的流变响应相对应的粒子组件中的进化和不可逆的变化。

Interfacial rheology is important for understanding properties such as Pickering emulsion or foam stability. Currently, the response is measured using a probe directly attached to the interface. This can both disturb the interface and is coupled to flow in the bulk phase, limiting its sensitivity. We have developed a contactless interfacial method to perform interfacial shear rheology on liquid/liquid interfaces with no tool attached directly to the interface. This is achieved by shearing one of the liquid phases and measuring the interfacial response via confocal microscopy. Using this method we have measured steady shear material parameters such as interfacial elastic moduli for interfaces with solid-like behaviour and interfacial viscosities for fluid-like interfaces. The accuracy of this method has been verified relative to a double-wall ring geometry. Moreover, using our contactless method we are able to measure lower interfacial viscosities than those that have previously been reported using a double-wall ring geometry. A further advantage is the simultaneous combination of macroscopic rheological analysis with microscopic structural analysis. Our analysis directly visualizes how the interfacial response is strongly correlated to the particle surface coverage and their interfacial assembly. Furthermore, we capture the evolution and irreversible changes in the particle assembly that correspond with the rheological response to steady shear.

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