Physical chemistry of highly concentrated emulsions

被引:187
作者
Foudazi, Reza [1 ]
Qavi, Sahar [1 ]
Masalova, Irina [2 ]
Malkin, Alexander Ya. [2 ,3 ]
机构
[1] New Mexico State Univ, Dept Chem & Mat Engn, Las Cruces, NM 88003 USA
[2] Cape Peninsula Univ Technol, Cape Town, South Africa
[3] Russian Acad Sci, Inst Petrochem Synth, Moscow, Russia
关键词
Highly concentrated emulsions; Elasticity; Yield stress; Stability; Disjoining pressure; YIELD-STRESS; RHEOLOGICAL PROPERTIES; DROPLET SIZE; OSMOTIC-PRESSURE; ELECTROSTATIC INTERACTIONS; INTERDROPLET INTERACTION; INTERFACIAL RHEOLOGY; COLLOIDAL PARTICLES; ELASTIC PROPERTIES; VOLUME FRACTION;
D O I
10.1016/j.cis.2015.03.002
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This review explores the physics underlying the rheology of highly concentrated emulsions (HCEs) to determine the relationship between elasticity and HCE stability, and to consider whether it is possible to describe all physicochemical properties of HCEs on the basis of a unique physical approach. We define HCEs as emulsions with a volume fraction above the maximum closest packing fraction of monodisperse spheres, phi(m) = 0.74, even if droplets are not of polyhedron shape. The solid-like rheological behavior of HCEs is characterized by yield stress and elasticity, properties which depend on droplet polydispersity and which are affected by caging at volume fractions about the jamming concentration, phi(j). A bimodal size distribution in HCEs diminishes caging and facilitates droplet movement, resulting in HCEs with negligible yield stress and no plateau in storage modulus. Thermodynamic forces automatically move HCEs toward the lowest free energy state, but since interdroplet forces create local minimums - points beyond which free energy temporarily increases before it reaches the global minimum of the system - the free energy of HCEs will settle at a local minimum unless additional energy is added. Several attempts have been undertaken to predict the elasticity of HCEs. In many cases, the elastic modulus of HCEs is higher than the one predicted from classical models, which only take into account spatial repulsion (or simply interfacial energy). Improved models based on free energy calculation should be developed to consider the disjoining pressure and interfacial rheology in addition to spatial repulsion. The disjoining pressure and interfacial viscoelasticity, which result in the deviation of elasticity from the classical model, can be regarded as parameters for quantifying the stability of HCEs. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:78 / 91
页数:14
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