Department of Chemical Engineering, Loughborough University, Loughborough LE11 3TU, United Kingdom.
Department of Chemical Engineering, Loughborough University, Loughborough LE11 3TU, United Kingdom.
J Colloid Interface Sci. 2019 Apr 15;542:23-32. doi: 10.1016/j.jcis.2019.01.119. Epub 2019 Jan 29.
Novel cost effective, versatile, reconfigurable, reusable and easy to assemble glass capillary microfluidic devices were developed and used to generate micro/nano-materials with controlled size and morphology. The devices are composed of coaxial assemblies of glass capillaries held between two interchangeable plastic blocks fabricated from chemically inert polyoxymethylene copolymer using computer numerical control (CNC) machining. Three different blocks were combined and locked together using Lego® inspired stud-and-hole coupling system to achieve different flow configurations. The device allows a truly axisymmetric round capillary inside a round capillary geometry and self-alignment of capillaries. The synthesis of polyvinylpyrrolidone capped gold nanoparticles and liposomes of controlled size was demonstrated in the co-flow device by mixing the contents of two parallel laminar streams. The flow focusing device was used to generate piroxicam monohydrate crystals of controlled size (10-29 μm) by antisolvent crystallisation. Silver nanoparticles with tailored size (40-90 nm) were prepared in the three-phase device by merging silver nitrate and tannic acid/citrate streams inside droplets. The same device was used to prepare fluorescently labelled double emulsion droplets with controlled number of inner droplets. The droplet morphology was modified and tuned during operation by adjusting the distance between the inner capillaries. Water-in-oil emulsions consisted of Eudragit S100 solution at pH > 7 dispersed in Miglyol® 840 were prepared and gellified in situ over 6 h without fouling. The setup time of the novel devices was reduced from ∼30 min in manually made capillary devices to just several minutes.
开发了新型经济高效、多功能、可重构、可重复使用且易于组装的玻璃毛细管微流控器件,并将其用于生成具有可控尺寸和形态的微/纳米材料。这些器件由同轴玻璃毛细管组装而成,玻璃毛细管夹在两个由化学惰性聚甲醛共聚物制成的可互换塑料块之间,使用计算机数控 (CNC) 加工制造。三个不同的块组合在一起,并使用乐高式启发的销钉和孔耦合系统锁定在一起,以实现不同的流动配置。该器件允许在圆形毛细管内实现真正的轴对称圆形毛细管和毛细管的自对准。在同轴流装置中,通过混合两个平行层流的内容物,演示了聚维酮包覆金纳米粒子和具有受控尺寸的脂质体的合成。通过反溶剂结晶,在流聚焦装置中生成了具有受控尺寸(10-29 μm)的吡罗昔康一水合物晶体。在三相装置中,通过将硝酸银和单宁酸/柠檬酸盐流合并在液滴内,制备了尺寸可调的银纳米粒子(40-90 nm)。通过调整内毛细管之间的距离,可以在操作过程中修改和调整液滴形态。在 pH 值>7 时,Eudragit S100 溶液在 Miglyol® 840 中分散形成的油包水乳液在 6 小时内原位凝胶化,而不会堵塞。新型装置的设置时间从手动毛细管装置的约 30 分钟缩短到仅几分钟。