Department of Mechanical Engineering, Indian Institute of Technology Delhi, New Delhi, India.
Electrophoresis. 2023 Apr;44(7-8):725-732. doi: 10.1002/elps.202200241. Epub 2023 Mar 9.
Polydimethylsiloxane (PDMS) based microfluidic devices have found increasing utility for electrophoretic and electrokinetic assays because of their ease of fabrication using replica molding. However, the fabrication of high-resolution molds for replica molding still requires the resource-intensive and time-consuming photolithography process, which precludes quick design iterations and device optimization. We here demonstrate a low-cost, rapid microfabrication process, based on electrohydrodynamic jet printing (EJP), for fabricating non-sacrificial master molds for replica molding of PDMS microfluidic devices. The method is based on the precise deposition of an electrically stretched polymeric solution of polycaprolactone in acetic acid on a silicon wafer placed on a computer-controlled motion stage. This process offers the high-resolution (order 10 m) capability of photolithography and rapid prototyping capability of inkjet printing to print high-resolution templates for elastomeric microfluidic devices within a few minutes. Through proper selection of the operating parameters such as solution flow rate, applied electric field, and stage speed, we demonstrate microfabrication of intricate master molds and corresponding PDMS microfluidic devices for electrokinetic applications. We demonstrate the utility of the fabricated PDMS microchips for nonlinear electrokinetic processes such as electrokinetic instability and controlled sample splitting in ITP. The ability to rapid prototype customized reusable master molds with order 10 m resolution within a few minutes can help in designing and optimizing microfluidic devices for various electrokinetic applications.
基于聚二甲基硅氧烷(PDMS)的微流控器件因其易于使用复制成型进行制造,因此在电泳和电动分析中得到了越来越多的应用。然而,用于复制成型的高分辨率模具的制造仍然需要资源密集型和耗时的光刻工艺,这排除了快速的设计迭代和设备优化。我们在这里展示了一种基于电动力学射流打印(EJP)的低成本、快速微制造工艺,用于制造用于 PDMS 微流控器件复制成型的非牺牲性主模具。该方法基于在放置在计算机控制的运动台上的硅晶片上精确沉积聚己内酯的电拉伸聚合物溶液。该工艺结合了光刻的高分辨率(10μm 级)能力和喷墨打印的快速原型制造能力,可在几分钟内打印出用于弹性体微流控器件的高分辨率模板。通过适当选择溶液流速、施加电场和台速等操作参数,我们展示了用于电动力学应用的复杂主模具和相应的 PDMS 微流控器件的微制造。我们展示了所制造的 PDMS 微芯片在电动力学不稳定性和 ITP 中的可控样品分裂等非线性电动力学过程中的实用性。能够在几分钟内快速原型化具有 10μm 分辨率的定制可重复使用的主模具的能力,可以帮助设计和优化各种电动力学应用的微流控器件。