Fabrication and Demonstration of a 3D-printing/PDMS Integrated Microfluidic Device

Jeonghyeon Cheon, Seunghyun Kim
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引用次数: 5

Abstract

3D printing is an attractive method to fabricate microfluidic devices due to (1) its fast and simple process without specialized equipment and cleanroom environment, and (2) its capability to create complex 3D structures. Combined with Polydimethylsiloxane (PDMS), it can be used to develop various microfluidic devices taking advantage of both 3D printing and PDMS. In this paper, we investigated a Digital Light Processing (DLP) 3D printer to fabricate 3D printing/PDMS integrated microfluidic devices. We used it to fabricate both a master mold for the PDMS process and a substrate containing pneumatic ports and channels. The optimal design parameters to print a symmetrical microchannel structure were determined. We also measured the printing accuracy of taper structures as an example of its capability to fabricate complex structures. Then, we fabricated a microfluidic device by integrating a PDMS component with a 3D printed substrate. The microfluidic device operation was demonstrated using dye solutions. The fluidic control results clearly show the microfluidic device works as expected.
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3d打印/PDMS集成微流控装置的制造与演示
3D打印是制造微流控器件的一种有吸引力的方法,因为(1)它的过程快速简单,不需要专门的设备和洁净室环境,(2)它能够创建复杂的3D结构。结合聚二甲基硅氧烷(PDMS),它可以用来开发各种微流体装置,同时利用3D打印和PDMS。在本文中,我们研究了一种数字光处理(DLP) 3D打印机来制造3D打印/PDMS集成微流控器件。我们用它来制造PDMS工艺的主模具和包含气动端口和通道的基板。确定了打印对称微通道结构的最佳设计参数。我们还测量了锥形结构的打印精度,作为其制造复杂结构的能力的一个例子。然后,我们通过将PDMS组件与3D打印基板集成来制作微流控装置。用染料溶液演示了微流控装置的操作。流体控制结果清楚地表明,微流体装置工作正常。
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