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Dynamically reconfigurable complex emulsions via tunable interfacial tensions

机译:通过可调的界面张力可动态重构的复杂乳液

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摘要

Emulsification is a powerful, well-known technique for mixing and dispersing immiscible components within a continuous liquid phase. Consequently, emulsions are central components of medicine, food and performance materials. Complex emulsions, including multiple emulsions and Janus droplets which contain hemispheres of differing material, are of increasing importance in pharmaceuticals and medical diagnostics, in the fabrication of microparticles and capsules for food, in chemical separations, in cosmetics, and in dynamic optics. Because complex emulsion properties and functions are related to the droplet geometry and composition, the development of rapid, simple fabrication approaches allowing precise control over the droplets’ physical and chemical characteristics is critical. Significant advances in the fabrication of complex emulsions have been made using a number of procedures, ranging from large-scale, less precise techniques that give compositional heterogeneity using high-shear mixers and membranes, to small-volume but more precise microfluidic methods,. However, such approaches have yet to create droplet morphologies that can be controllably altered after emulsification. Reconfigurable complex liquids potentially have greatly increased utility as dynamically tunable materials. Here we describe an approach to the one-step fabrication of three- and four-phase complex emulsions with highly controllable and reconfigurable morphologies. The fabrication makes use of the temperature-sensitive miscibility of hydrocarbon, silicone and fluorocarbon liquids, and is applied to both the microfluidic and the scalable batch production of complex droplets. We demonstrate that droplet geometries can be alternated between encapsulated and Janus configurations by varying the interfacial tensions using hydrocarbon and fluorinated surfactants including stimuli-responsive and cleavable surfactants. This yields a generalizable strategy for the fabrication of multiphase emulsions with controllably reconfigurable morphologies and the potential to create a wide range of responsive materials.
机译:乳化是用于在连续液相中混合和分散不混溶组分的有力,众所周知的技术。因此,乳剂是药物,食品和功能材料的主要成分。复杂的乳剂,包括多种乳剂和含有不同物质半球的Janus液滴,在制药和医学诊断学,微粒和胶囊的制造中越来越重要。 用于食品 ,化学分离 ,化妆品 和动态光学 。由于复杂的乳液特性和功能与液滴的几何形状和成分有关,因此开发快速,简单的制造方法以精确控制液滴的物理和化学特性至关重要。复杂乳液的制备已经取得了重大进展,使用了许多程序,从使用高剪切混合器和膜 产生成分异质性的大规模,精度较差的技术到小体积但更精确的微流体方法。然而,这些方法尚未产生在乳化后可控制地改变的液滴形态。可重配置的复杂液体作为动态可调谐材料的用途可能大大增加。在这里,我们描述了一步制备具有高度可控和可重构形态的三相和四相复合乳液的方法。该制造利用了碳氢化合物,硅树脂和碳氟化合物液体的温度敏感混溶性,可应用于微流体和复杂液滴的可扩展批量生产。我们证明液滴的几何形状可以通过改变使用碳氢化合物和氟化表面活性剂(包括刺激响应性和可裂解表面活性剂)的界面张力,在封装和Janus配置之间交替变化。这为制造具有可控的可重构形态的多相乳液提供了一种通用的策略,并具有创建各种响应材料的潜力。

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