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Droplet microfluidics in thermoplastics: device fabrication, droplet generation, and content manipulation using integrated electric and magnetic fields

机译:热塑性塑料中的液滴微流体:设备制造,液滴生成和使用集成电场和磁场的内容操纵

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We have developed droplet microfluidic devices in thermoplastics and demonstrated the integration of key functional components that not only facilitate droplet generation, but also include electric field-assisted reagent injection, droplet splitting, and magnetic field-assisted bead extraction. We manufactured devices in poly(methyl methacrylate) and cyclic olefin polymer using a hot-embossing procedure employing silicon masters fabricated via photolithography and deep reactive ion etching techniques. Device characterization showed robust fabrication with uniform feature transfer and good embossing yield. Channel modification with heptadecafluoro-1,1,2,2-tetrahydrodecyltrichlorosilane increased device hydrophobicity, allowing stable generation of 330 pL aqueous droplets using T-junction configuration. Picoinjector and K-channel motifs were also both successfully integrated into the thermoplastic devices, allowing for robust control over electric field-assisted reagent injection, as well as droplet splitting with the K-channel. A magnetic field was also introduced to the K-channel geometry to allow for selective concentration of magnetic beads while decanting waste volume through droplet splitting. To show the ability to link multiple, modular features in a single thermoplastic device, we integrated droplet generation, reagent injection, and magnetic field-assisted droplet splitting on a single device, realizing a magnetic bead washing scheme to selectively exchange the fluid composition around the magnetic particles, analogous to the washing steps in many common biochemical assays. Finally, integrated devices were used to perform a proof-of-concept in-droplet β-galactosidase enzymatic assay combining enzyme-magnetic bead containing droplet generation, resorufin-β-D-galactopyranoside substrate injection, enzyme–substrate reaction, and enzyme-magnetic bead washing. By integrating multiple droplet operations and actuation forces we have demonstrated the potential of thermoplastic droplet microfluidic devices for complex (bio)chemical analysis, and we envision a path toward mass fabrication of droplet microfluidic devices for a range of (bio)chemical applications.
机译:我们已经开发了热塑性塑料中的微滴微流控设备,并展示了关键功能部件的集成,这些功能部件不仅有助于微滴的产生,而且还包括电场辅助试剂注入,液滴分裂和磁场辅助磁珠提取。我们使用热压印程序,使用通过光刻和深反应离子刻蚀技术制造的硅母盘,以聚甲基丙烯酸甲酯和环烯烃聚合物制造器件。器件表征显示出坚固的制造工艺,均匀的特征转移和良好的压纹产量。用七氟-1,1,2,2-四氢癸基三氯硅烷进行通道修饰可增加装置的疏水性,并允许使用T型结稳定生成330 pL的水滴。 Picoinjector和K通道模体也都成功地集成到了热塑性设备中,从而可以对电场辅助试剂的注射以及K通道的液滴分裂进行强大的控制。还向K通道几何结构引入了一个磁场,以允许选择性地集中磁珠,同时通过液滴分裂倾析出废物。为了展示在单个热塑性设备中链接多个模块化功能的能力,我们将液滴生成,试剂注入和磁场辅助液滴分裂集成在单个设备上,实现了磁珠清洗方案,可以有选择地交换流体周围的流体成分。磁性颗粒,类似于许多常见生化分析中的洗涤步骤。最后,使用集成设备进行概念验证的液滴内β-半乳糖苷酶酶促测定,结合了包含液滴产生的酶-磁珠,试卤灵-β-D-吡喃半乳糖苷底物注射,酶-底物反应和酶-磁洗珠。通过整合多个液滴操作和驱动力,我们已经证明了热塑性液滴微流控设备在复杂(生物)化学分析中的潜力,并且我们设想了一种大规模制造液滴微流控设备的方法,可用于一系列(生物)化学应用。

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