Hung Lung-Hsin, Choi Kyung M, Tseng Wei-Yu, Tan Yung-Chieh, Shea Kenneth J, Lee Abraham Phillip
Department of Chemical Engineering and Materials Science, University of California at Irvine, Irvine, CA 92697, USA.
Lab Chip. 2006 Feb;6(2):174-8. doi: 10.1039/b513908b. Epub 2006 Jan 5.
A multifunctional and high-efficiency microfluidic device for droplet generation and fusion is presented. Through unique design of the micro-channels, the device is able to alternately generate droplets, generating droplet ratios ranging from 1 ratio 5 to 5 ratio 1, and fuse droplets, enabling precise chemical reactions in several picoliters on a single chip. The controlled fusion is managed by passive control based on the channel geometry and liquid phase flow. The synthesis of CdS nanoparticles utilizing each fused droplet as a microreactor for rapid and efficient mixing of reagents is demonstrated in this paper. Following alternating droplet generation, the channel geometry allows the exclusive fusion of alternate droplets with concomitant rapid mixing and produces supersaturated solution of Cd2+ and S2- ions to form CdS nanoparticles in each fused droplet. The spectroscopic properties of the CdS nanoparticles produced by this method are compared with CdS prepared by bulk mixing.
本文介绍了一种用于液滴生成和融合的多功能高效微流控装置。通过微通道的独特设计,该装置能够交替生成液滴,生成比例范围从1:5到5:1的液滴,并融合液滴,从而在单个芯片上实现几皮升体积内的精确化学反应。受控融合通过基于通道几何形状和液相流的被动控制来实现。本文展示了利用每个融合液滴作为微反应器来快速高效混合试剂合成硫化镉(CdS)纳米颗粒的过程。在交替生成液滴之后,通道几何形状允许交替液滴进行排他性融合,并伴随快速混合,从而在每个融合液滴中产生Cd2+和S2-离子的过饱和溶液以形成CdS纳米颗粒。将该方法制备的CdS纳米颗粒的光谱性质与通过本体混合制备的CdS进行了比较。