State Key Laboratory of Bioreactor Engineering, School of Chemistry and Molecular Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, People's Republic of China.
Centre for Misfolding Diseases, Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, United Kingdom.
Langmuir. 2020 Mar 10;36(9):2349-2356. doi: 10.1021/acs.langmuir.9b03622. Epub 2020 Feb 26.
Microemulsions have found a wide range of applications exploiting their chemical and physical properties. Development of microfluidic-based approaches has allowed for the controlled production of highly monodispersed emulsions, including the formation of multiple and hierarchical emulsions. Conventional poly(dimethylsiloxane)-based microfluidic systems require tight spatial control over the surface chemistry when used for double emulsion generation, which can be challenging to achieve on the micrometer scale. Here, we present a two-dimensional device design, which can selectively be surface-treated in a straightforward manner and allows for the formation of uniform water/oil/water double emulsions by combining two distinct hydrophilic and hydrophobic surface properties. These surfaces are sufficiently separated in space to allow for imparting their functionalization without the requirement for lithographic approaches or complex flow control. We demonstrate that a mismatch between the wettability requirements of the continuous phase and the channel wall inherent in this approach can be tolerated over several hundreds of micrometers, opening up the possibility to use simple pressure-driven flows to achieve surface functionalization. The design architecture exhibits robust efficiency in emulsion generation while retaining simple device fabrication. We finally demonstrate the potential of this approach by generating water in oil in water emulsions with lipid molecules acting as surfactants.
微乳液因其化学和物理性质而得到了广泛的应用。基于微流控的方法的发展允许对高度单分散乳液进行控制生产,包括形成多相和分级乳液。在用于制备双乳液时,传统的基于聚二甲基硅氧烷的微流控系统需要对表面化学进行严格的空间控制,这在微米尺度上很难实现。在这里,我们提出了一种二维器件设计,可以通过组合两种不同的亲水性和疏水性表面特性,以简单直接的方式进行选择性表面处理,并允许形成均匀的水/油/水双乳液。这些表面在空间上充分分离,允许赋予其功能化而无需光刻方法或复杂的流动控制。我们证明,在这种方法中,连续相的润湿性要求与通道壁之间的固有不匹配可以在数百微米的范围内得到容忍,从而为使用简单的压力驱动流来实现表面功能化开辟了可能性。该设计架构在保留简单器件制造的同时,在乳液生成方面表现出了强大的效率。最后,我们通过使用脂质分子作为表面活性剂生成油包水包水乳液,展示了这种方法的潜力。