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微流控技术生成全水相的双乳液和三乳液。

Microfluidic Generation of All-Aqueous Double and Triple Emulsions.

机构信息

Department of Mechanical and Industrial Engineering, Ryerson University, Toronto, ON, M5B 2K3, Canada.

Keenan Research Centre for Biomedical Science, St. Michael's Hospital, Toronto, ON, M5B 1W8, Canada.

出版信息

Small. 2020 Feb;16(7):e1906565. doi: 10.1002/smll.201906565. Epub 2020 Jan 27.

Abstract

Higher order emulsions are used in a variety of different applications in biomedicine, biological studies, cosmetics, and the food industry. Conventional droplet generation platforms for making higher order emulsions use organic solvents as the continuous phase, which is not biocompatible and as a result, further washing steps are required to remove the toxic continuous phase. Recently, droplet generation based on aqueous two-phase systems (ATPS) has emerged in the field of droplet microfluidics due to their intrinsic biocompatibility. Here, a platform to generate all-aqueous double and triple emulsions by introducing pressure-driven flows inside a microfluidic hybrid device is presented. This system uses a conventional microfluidic flow-focusing geometry coupled with a coaxial microneedle and a glass capillary embedded in flow-focusing junctions. The configuration of the hybrid device enables the focusing of two coaxial two-phase streams, which helps to avoid commonly observed channel-wetting problems. It is shown that this approach achieves the fabrication of higher-order emulsions in a poly(dimethylsiloxane)-based microfluidic device, and controls the structure of the all-aqueous emulsions. This hybrid microfluidic approach allows for facile higher-order biocompatible emulsion formation, and it is anticipated that this platform will find utility for generating biocompatible materials for various biotechnological applications.

摘要

高阶乳液在生物医药、生物研究、化妆品和食品工业的各种不同应用中都有使用。用于制备高阶乳液的常规液滴生成平台使用有机溶剂作为连续相,这是不兼容生物的,因此需要进一步的清洗步骤来去除有毒的连续相。最近,由于其固有生物相容性,基于双水相体系 (ATPS) 的液滴生成在微流控领域崭露头角。在这里,提出了一种通过在微流控混合装置内引入压力驱动流来生成全水双乳液和三乳液的平台。该系统使用传统的微流控流聚焦几何结构,结合同轴微针和嵌入流聚焦结中的玻璃毛细管。混合装置的配置能够聚焦两个同轴的两相流,有助于避免常见的通道润湿问题。结果表明,该方法可以在基于聚二甲基硅氧烷的微流控装置中制备高阶乳液,并控制全水乳液的结构。这种混合微流控方法可以方便地形成生物相容性的高阶乳液,预计该平台将在用于各种生物技术应用的生物相容性材料的生成中得到应用。

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