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通过使用3D打印母模热压印在环烯烃共聚物(COC)中制造微流控场效应晶体管(µFFE)器件。

Fabrication of µFFE Devices in COC via Hot Embossing with a 3D-Printed Master Mold.

作者信息

LeMon Matthew B, Douma Cecilia C, Burke Gretchen S, Bowser Michael T

机构信息

Department of Chemistry, University of Minnesota, Minneapolis, MN 55455, USA.

出版信息

Micromachines (Basel). 2023 Sep 2;14(9):1728. doi: 10.3390/mi14091728.

Abstract

The fabrication of high-performance microscale devices in substrates with optimal material properties while keeping costs low and maintaining the flexibility to rapidly prototype new designs remains an ongoing challenge in the microfluidics field. To this end, we have fabricated a micro free-flow electrophoresis (µFFE) device in cyclic olefin copolymer (COC) via hot embossing using a PolyJet 3D-printed master mold. A room-temperature cyclohexane vapor bath was used to clarify the device and facilitate solvent-assisted thermal bonding to fully enclose the channels. Device profiling showed 55 µm deep channels with no detectable feature degradation due to solvent exposure. Baseline separation of fluorescein, rhodamine 110, and rhodamine 123, was achieved at 150 V. Limits of detection for these fluorophores were 2 nM, 1 nM, and 10 nM, respectively, and were comparable to previously reported values for glass and 3D-printed devices. Using PolyJet 3D printing in conjunction with hot embossing, the full design cycle, from initial design to production of fully functional COC µFFE devices, could be completed in as little as 6 days without the need for specialized clean room facilities. Replicate COC µFFE devices could be produced from an existing embossing mold in as little as two hours.

摘要

在具有最佳材料特性的基板上制造高性能微尺度设备,同时保持低成本并维持快速制作新设计原型的灵活性,仍然是微流体领域持续面临的挑战。为此,我们通过使用PolyJet 3D打印的母模进行热压印,在环烯烃共聚物(COC)中制造了一种微自由流动电泳(µFFE)设备。使用室温环己烷蒸汽浴来使设备变清晰,并促进溶剂辅助热键合以完全封闭通道。设备轮廓显示通道深度为55 µm,且未检测到因溶剂暴露导致的特征退化。在150 V电压下实现了荧光素、罗丹明110和罗丹明123的基线分离。这些荧光团的检测限分别为2 nM、1 nM和10 nM,与先前报道的玻璃和3D打印设备的值相当。结合使用PolyJet 3D打印和热压印,从初始设计到生产出功能齐全的COC µFFE设备的完整设计周期,无需专门的洁净室设施,最短可在6天内完成。从现有的压印模具中,最短只需两小时就能生产出复制的COC µFFE设备。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae35/10534651/5ba6955ff009/micromachines-14-01728-g001.jpg

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