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Fabrication of 3D high aspect ratio PDMS microfluidic networks with a hybrid stamp

机译:带有混合印模的3D高长宽比PDMS微流体网络的制造

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摘要

We report a novel methodology for fabricating large-area, multilayer, thin-film, high aspect ratio, 3D microfluidic structures with through-layer vias and open channels that can be bonded between hard substrates. It is realized by utilizing a hybrid stamp with a thin plastic sheet embedded underneath a PDMS surface. This hybrid stamp solves an important edge protrusion issue during PDMS molding while maintaining necessary stamp elasticity to ensure the removal of PDMS residues at through-layer regions. Removing edge protrusion is a significant progress toward fabricating 3D structures since high aspect ratio PDMS structures with flat interfaces can be realized to facilitate multilayer stacking and bonding to hard substrates. Our method also allows for the fabrication of 3D deformable channels, which can lead to profound applications in electrokinetics, optofluidics, inertial microfluidics, and other fields where the shape of the channel cross section plays a key role in device physics. To demonstrate, as an example, we have fabricated a microfluidic channel by sandwiching two 20 mu m wide, 80 mu m tall PDMS membranes between two featureless ITO glass substrates. By applying electrical bias to the two ITO substrates and pressure to deform the thin membrane sidewalls, strong electric field enhancement can be generated in the center of a channel to enable 3D sheathless dielectrophoretic focusing of biological objects including mammalian cells and bacteria at a flow speed up to 14 cm s(-1).
机译:我们报告了一种新颖的方法,可用于制造大面积,多层,薄膜,高深宽比,3D微流体结构,并具有可结合在硬质基材之间的通孔和开放通道。它是通过使用混合印章实现的,该印章具有嵌入PDMS表面下方的薄塑料片。这种混合印模解决了PDMS成型过程中重要的边缘突出问题,同时保持必要的印模弹性,以确保去除穿透层区域的PDMS残留物。去除边缘突起对于制造3D结构是一项重大进步,因为可以实现具有扁平界面的高深宽比PDMS结构,以促进多层堆叠以及与硬质基材的粘合。我们的方法还允许制造3D变形通道,从而可以在电动动力学,光流体,惯性微流体以及通道横截面形状在设备物理中起关键作用的其他领域中得到广泛应用。为了举例说明,我们通过在两个无特征的ITO玻璃基板之间夹着两个20μm宽,80μm高的PDMS膜来制造微流体通道。通过对两个ITO基板施加电偏压并施加压力以使薄膜侧壁变形,可以在通道中心产生强大的电场增强,从而能够以最快的速度对包括哺乳动物细胞和细菌在内的生物物体进行3D无鞘介电电泳聚焦至14厘米s(-1)。

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