Hasselbrink Ernest F, Shepodd Timothy J, Rehm Jason E
Sandia National Laboratories, Livermore, California 94551, USA.
Anal Chem. 2002 Oct 1;74(19):4913-8. doi: 10.1021/ac025761u.
We have developed a nonstick polymer formulation for creating moving parts inside of microfluidic channels and have applied the technique to create piston-based devices that overcome several microfluidic flow control challenges. The parts were created bycompletely filling the channels of a glass microfluidic chip with the monomer/ solvent/initiator components of a nonstick photopolymer and then selectively exposing the chip to UV light in order to define mobile pistons (or other quasi-two-dimensional shapes) inside the channels. Stops defined in the substrate prevent the part from flushing out of the device but also provide sealing surfaces so that valves and other flow control devices are possible. Sealing against pressures greater than 30 MPa (4,500 psi) and actuation times less than 33 ms are observed. An on-chip check valve, a diverter valve, and a 10-nL pipet are demonstrated. This valving technology, coupled with high-pressure electrokinetic pumps, should make it possible to create a completely integrated HPLC system on a chip.
我们开发了一种用于在微流控通道内制造活动部件的不粘聚合物配方,并已将该技术应用于制造基于活塞的装置,这些装置克服了几个微流控流动控制方面的挑战。这些部件是通过用不粘光聚合物的单体/溶剂/引发剂成分完全填充玻璃微流控芯片的通道,然后选择性地将芯片暴露于紫外光下,以便在通道内定义可移动活塞(或其他准二维形状)而制成的。在基板中定义的挡块可防止部件从装置中冲出,但也提供密封表面,从而使阀门和其他流动控制装置成为可能。观察到能承受大于30 MPa(4500 psi)的压力密封且启动时间小于33 ms。展示了一个片上止回阀、一个分流阀和一个10 nL移液器。这种阀门技术与高压电动泵相结合,应该能够在芯片上创建一个完全集成的高效液相色谱系统。