Lin Yen-Heng, Chen Cheng-Tso, Huang Lynn L H, Lee Gwo-Bin
Department of Engineering Science, National Cheng Kung University, Tainan, Taiwan, Republic of China.
Biomed Microdevices. 2007 Dec;9(6):833-43. doi: 10.1007/s10544-007-9096-9.
The formation of micro-scale monodispersed emulsions is crucial for a variety of applications such as cosmetics, food industry and biotechnology. In this study, a new microfluidic chip with a multiple-channel layout for high-throughput emulsions is reported. This chip generated fine-tuned and uniform microdroplets in liquids with a higher throughput for emulsification applications. It employed a combination of multiple hydrodynamic flow focusing and liquid-cutting devices called "active pneumatic choppers." Experimental data indicated that oil-in-water microdroplets with diameters ranging from 6 to 120 microm can be successfully generated with a coefficient of variation less than 3.75%. The size of the droplets can be actively fine-tuned by using two approaches by adjusting relative sheath/sample flow velocity ratios and chopping frequency. Finally, two commonly used biocompatible materials, including collagen and calcium-alginate (Ca-alginate), were used to form microspheres by utilizing the liquid-cutting technique. The developed microfluidic chip is promising in various applications including biotechnology, nano-medicine and cosmetics.
微尺度单分散乳液的形成对于化妆品、食品工业和生物技术等多种应用至关重要。在本研究中,报道了一种用于高通量乳液的具有多通道布局的新型微流控芯片。该芯片在液体中产生了经过微调且均匀的微滴,具有更高的乳化应用通量。它采用了多种流体动力流聚焦和称为“主动气动斩波器”的液切装置的组合。实验数据表明,可以成功生成直径范围为6至120微米的水包油微滴,变异系数小于3.75%。通过调整相对鞘层/样品流速比和斩波频率这两种方法,可以主动微调液滴的大小。最后,利用液切技术使用两种常用的生物相容性材料,包括胶原蛋白和海藻酸钙(Ca-藻酸盐)来形成微球。所开发的微流控芯片在包括生物技术、纳米医学和化妆品在内的各种应用中具有广阔前景。