Emulsion characterization via microfluidic devices: A review on interfacial tension and stability to coalescence

聚结(物理) 材料科学 微流控 纳米技术 乳状液 粘度 表面张力 聚合物 化学工程 复合材料 化学物理 化学 热力学 有机化学 物理 工程类 天体生物学
作者
Thao M. Ho,Aysan Razzaghi,Arun Ramachandran,Kirsi S. Mikkonen
出处
期刊:Advances in Colloid and Interface Science [Elsevier]
卷期号:299: 102541-102541 被引量:130
标识
DOI:10.1016/j.cis.2021.102541
摘要

Emulsions have gained significant importance in many industries including foods, pharmaceuticals, cosmetics, health care formulations, paints, polymer blends and oils. During emulsion generation, collisions can occur between newly-generated droplets, which may lead to coalescence between the droplets. The extent of coalescence is driven by the properties of the dispersed and continuous phases (e.g. density, viscosity, ion strength and pH), and system conditions (e.g. temperature, pressure or any external applied forces). In addition, the diffusion and adsorption behaviors of emulsifiers which govern the dynamic interfacial tension of the forming droplets, the surface potential, and the duration and frequency of the droplet collisions, contribute to the overall rate of coalescence. An understanding of these complex behaviors, particularly those of interfacial tension and droplet coalescence during emulsion generation, is critical for the design of an emulsion with desirable properties, and for the optimization of the processing conditions. However, in many cases, the time scales over which these phenomena occur are extremely short, typically a fraction of a second, which makes their accurate determination by conventional analytical methods extremely challenging. In the past few years, with advances in microfluidic technology, many attempts have demonstrated that microfluidic systems, characterized by micrometer-size channels, can be successfully employed to precisely characterize these properties of emulsions. In this review, current applications of microfluidic devices to determine the equilibrium and dynamic interfacial tension during droplet formation, and to investigate the coalescence stability of dispersed droplets applicable to the processing and storage of emulsions, are discussed.
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