Liu Ai-Lin, He Feng-yun, Wang Kang, Zhou Ting, Lu Yu, Xia Xing-hua
Key Laboratory of Analytical Chemistry for Life Science, Department of Chemistry, Nanjing University, Nanjing 210093, P. R. China.
Lab Chip. 2005 Sep;5(9):974-8. doi: 10.1039/b502764k. Epub 2005 Jul 12.
We developed a facile and rapid one-step technique for design and fabrication of passive micromixers in microfluidic devices using a direct-printing process. A laser printing mechanism was dexterously adopted to pattern the microchannels with different gray levels using vector graphic software. With the present method, periodically ordered specific bas-relief microstructures can be easily fabricated on transparencies by a simple printing process. The size and shape of the resultant microstructures are determined by the gray level of the graphic software and the resolution of the laser printer. Patterns of specific bas-relief microstructures on the floor of a channel act as obstacles in the flow path for advection mixing, which can be used as efficient mixing elements. The mixing effect of the resultant micromixer in microfluidic devices was evaluated using CCD fluorescence spectroscopy. We found that the mixing performance depends strongly on the gray level values. Under optimal conditions, fast passive mixing with our periodic ordered patterns in microfluidic devices has been achieved at the very early stages of the laminar flow. In addition, fabrication of micromixers using the present versatile technique requires less than an hour. The present method is promising for fabrication of micromixers in microfluidic devices at low cost and without complicated devices and environment, providing a simple solution to mixing problems in the micro-total-analysis-systems field.
我们开发了一种简便快速的一步法技术,用于在微流控设备中使用直接打印工艺设计和制造无源微混合器。巧妙地采用激光打印机制,使用矢量图形软件对具有不同灰度级的微通道进行图案化。采用本方法,通过简单的打印工艺可轻松在透明胶片上制造出周期性有序的特定浅浮雕微结构。所得微结构的尺寸和形状由图形软件的灰度级和激光打印机的分辨率决定。通道底部特定浅浮雕微结构的图案在平流混合的流动路径中充当障碍物,可作为高效的混合元件。使用电荷耦合器件(CCD)荧光光谱法评估了所得微混合器在微流控设备中的混合效果。我们发现混合性能强烈依赖于灰度值。在最佳条件下,在层流的非常早期阶段就实现了微流控设备中具有我们周期性有序图案的快速无源混合。此外,使用本通用技术制造微混合器所需时间不到一小时。本方法有望以低成本且无需复杂设备和环境来制造微流控设备中的微混合器,为微全分析系统领域的混合问题提供了一个简单的解决方案。