Su Jing, Zheng Yizhe, Wu Hongkai
Department of Chemistry, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.
Lab Chip. 2009 Apr 7;9(7):996-1001. doi: 10.1039/b813518e. Epub 2008 Dec 24.
This work describes a convenient microfluidic strategy with a simple and minimal-requirement design for the generation of uniformly-sized alginate gel fibers with diameters one order of magnitude smaller than those formed in conventional methods. Different from common microfluidic methods, our system contains a single microchannel through which alginate solutions are transported and squeezed into a calcium chloride solution. Ca2+ ions immediately cross link the alginate solution into a gel state that is collected with a rotor. We use microchannels to define the initial size of the alginate fibers and a roller to further reduce the fiber size (diameter) by one order of magnitude down to approximately 1 microm. The size of the formed fibers can be well controlled by adjusting the corresponding parameters, and be predicted with a simple equation. In addition, various functional materials (colloidal particles, bacteria and nanoparticles) have been encapsulated into the gel fibers with this technique.
这项工作描述了一种便捷的微流控策略,其设计简单且要求极低,用于生成尺寸均匀的藻酸盐凝胶纤维,其直径比传统方法形成的纤维小一个数量级。与常见的微流控方法不同,我们的系统包含一个单一的微通道,藻酸盐溶液通过该通道被输送并挤压到氯化钙溶液中。钙离子立即将藻酸盐溶液交联成凝胶状态,并用转子收集。我们使用微通道来定义藻酸盐纤维的初始尺寸,并用一个滚轮将纤维尺寸(直径)进一步减小一个数量级,降至约1微米。通过调整相应参数,可以很好地控制所形成纤维的尺寸,并用一个简单的方程进行预测。此外,利用该技术已将各种功能材料(胶体颗粒、细菌和纳米颗粒)封装到凝胶纤维中。