Department of Bioengineering, University of Illinois at Chicago, Chicago, IL 60607, USA.
Biomed Microdevices. 2011 Aug;13(4):633-9. doi: 10.1007/s10544-011-9533-7.
There is a need for a simple method to control fluid flow within microfluidic channels. To meet this need, a simple push pin with a polydimethylsiloxane (PDMS) tip has been integrated into microfluidic networks to be placed within the microchannel to obstruct flow. This new valve design can attain on/off control of fluid flow without an external power source using readily-available, low-cost materials. The valve consists of a 14 gauge (1.6 mm) one inch piece of metal tubing with a PDMS pad at the tip to achieve a fluidic seal when pressed against a microfluidic channel's substrate. The metal tubing or pin is then either manually pushed down to block or pulled up to allow fluid flow. The valve was validated using a pressure transducer and fluorescent dye to determine the breakthrough pressure the valve can withstand over multiple cycles. In the first cycle, the median value for pressure withstood by the valve was 8.8 psi with a range of 17.5-2.7 psi. The pressure the valves were able to withstand during each successive trial was lower suggesting they may be most valuable as a method to control the initial introduction of fluids into a microfluidic device. These valves can achieve flow regulation within microfluidic devices, have a small dead volume, and are simple to fabricate and use, making this technique widely suitable for a range of applications.
需要有一种简单的方法来控制微流控通道内的流体流量。为了满足这一需求,我们将一个带有聚二甲基硅氧烷(PDMS)尖端的简单推针集成到微流控网络中,放置在微通道内以阻止流动。这种新的阀设计可以在没有外部电源的情况下使用现成的、低成本的材料实现对流体流动的开/关控制。该阀由一段 14 号(1.6 毫米)的 1 英寸金属管和一个 PDMS 垫组成,当金属管或推针压在微流控通道的基底上时,PDMS 垫可以实现流体密封。然后,通过手动将金属管或推针向下推以阻挡或向上拉以允许流体流动来实现对阀的控制。该阀通过压力传感器和荧光染料进行了验证,以确定阀可以承受多次循环的突破压力。在第一个循环中,阀承受的压力中位数为 8.8psi,范围为 17.5-2.7psi。每个后续试验中阀承受的压力都较低,这表明它们可能最适合作为控制流体初始引入微流控装置的方法。这些阀可以在微流控装置内实现流量调节,具有较小的死体积,并且制造和使用简单,因此这种技术广泛适用于各种应用。