Medical Informatics & Biological Micro-electro-mechanical Systems (MIMEMS) Specialized Laboratory, Department of Biomedical Engineering, Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia.
Lab Chip. 2013 Aug 21;13(16):3199-209. doi: 10.1039/c3lc00004d. Epub 2013 Jun 17.
A technique known as thermo-pneumatic (TP) pumping is used to pump fluids on a microfluidic compact disc (CD) back towards the CD center against the centrifugal force that pushes liquids from the center to the perimeter of the disc. Trapped air expands in a TP air chamber during heating, and this creates positive pressure on liquids located in chambers connected to that chamber. While the TP air chamber and connecting channels are easy to fabricate in a one-level CD manufacturing technique, this approach provides only one way pumping between two chambers, is real-estate hungry and leads to unnecessary heating of liquids in close proximity to the TP chamber. In this paper, we present a novel TP push and pull pumping method which allows for pumping of liquid in any direction between two connected liquid chambers. To ensure that implementation of TP push and pull pumping also addresses the issue of space and heating challenges, a multi-level 3D CD design is developed, and localized forced convection heating, rather than infra-red (IR) is applied. On a multi-level 3D CD, the TP features are placed on a top level separate from the rest of the microfluidic processes that are implemented on a lower separate level. This approach allows for heat shielding of the microfluidic process level, and efficient usage of space on the CD for centrifugal handling of liquids. The use of localized forced convection heating, rather than infra-red (IR) or laser heating in earlier implementations allows not only for TP pumping of liquids while the CD is spinning but also makes heat insulation for TP pumping and other fluidic functions easier. To aid in future implementations of TP push and pull pumping on a multi-level 3D CD, study on CD surface heating is also presented. In this contribution, we also demonstrate an advanced application of pull pumping through the implementation of valve-less switch pumping.
一种称为热气动(TP)泵送的技术用于将微流控光盘(CD)上的流体泵送回光盘中心,以抵抗将液体从中心推向光盘边缘的离心力。在加热过程中,TP 空气室中的被困空气会膨胀,从而在与该腔室相连的腔室中产生对液体的正压。虽然在一级 CD 制造技术中,TP 空气室和连接通道很容易制造,但这种方法仅提供了在两个腔室之间的单向泵送方式,占用大量空间,并导致与 TP 腔室接近的液体不必要地加热。在本文中,我们提出了一种新颖的 TP 推挽泵送方法,允许在两个连接的液体腔室之间的任何方向泵送液体。为了确保 TP 推挽泵送的实施也解决了空间和加热挑战的问题,开发了一种多级 3D CD 设计,并应用了局部强制对流加热,而不是红外(IR)。在多级 3D CD 上,TP 特征位于与在较低单独层上实现的微流控工艺分开的顶层上。这种方法允许对微流控工艺层进行隔热,并在 CD 上有效地利用空间进行液体的离心处理。与早期实施中的红外(IR)或激光加热相比,使用局部强制对流加热不仅允许在 CD 旋转时进行 TP 泵送,而且还使 TP 泵送和其他流体功能的隔热更容易。为了在多级 3D CD 上辅助未来的 TP 推挽泵送的实施,还对 CD 表面加热进行了研究。在本贡献中,我们还通过实现无阀开关泵送来演示了拉泵的高级应用。