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生物微流控设备的高精度立体光刻技术

High-Precision Stereolithography of Biomicrofluidic Devices.

作者信息

Kuo Alexandra P, Bhattacharjee Nirveek, Lee Yuan-Sheng, Castro Kurt, Kim Yong Tae, Folch Albert

机构信息

Department of Bioengineering, University of Washington Seattle, WA 98195, USA.

Department of Mechanical Engineering University of Washington, Seattle, WA 98195, USA.

出版信息

Adv Mater Technol. 2019 Jun;4(6). doi: 10.1002/admt.201800395. Epub 2019 Jan 3.

Abstract

Stereolithography (SL) is emerging as an attractive alternative to soft lithography for fabricating microfluidic devices due to its low cost and high design efficiency. Low molecular weight poly(ethylene glycol)diacrylate (MW = 258) (PEG-DA-258) has been used for SL 3D-printing of biocompatible microdevices at submillimeter resolution. However, 3D-printing resins that simultaneously feature high transparency, high biocompatibility, and high resolution are still lacking. It is found that photosensitizer isopropyl thioxanthone can, in a concentration-dependent manner, increase the absorbance of the resin (containing PEG-DA-258 and photoinitator Irgacure-819) by over an order of magnitude. This increase in absorbance allows for SL printing of microdevices at sub pixel resolution with commercially available desktop printers and without compromising transparency or biocompatibility. The assembly-free, rapid (<15 h) 3D-printing of a variety of complex 3D microfluidic devices such as a 3D-fluid router, a passive chaotic micro-mixer, an active micro-mixer with pneumatic microvalves, and high-aspect ratio (37:1) microchannels of single pixel width is demonstrated. These manufacturing capabilities are unavailable in conventional microfluidic rapid prototyping techniques. The low absorption of small hydrophobic molecules and microfluidic labeling of cultured mammalian cells in 3D-printed PEG-DA-258 microdevices is demonstrated, indicating the potential of PEG-DA-based fabrication of cell-based assays, drug discovery, and organ-on-chip platforms.

摘要

立体光刻技术(SL)因其低成本和高设计效率,正成为一种极具吸引力的制造微流控设备的软光刻替代方法。低分子量聚乙二醇二丙烯酸酯(MW = 258)(PEG - DA - 258)已被用于亚毫米分辨率的生物相容性微器件的SL 3D打印。然而,同时具备高透明度、高生物相容性和高分辨率的3D打印树脂仍然匮乏。研究发现,光敏剂异丙基硫杂蒽酮能够以浓度依赖方式使树脂(含PEG - DA - 258和光引发剂Irgacure - 819)的吸光度提高一个数量级以上。吸光度的这种增加使得使用商用桌面打印机能够以亚像素分辨率进行微器件的SL打印,且不影响透明度或生物相容性。展示了无需组装、快速(<15小时)3D打印各种复杂的3D微流控设备,如3D流体路由器、被动混沌微混合器、带有气动微阀的主动微混合器以及单像素宽度高纵横比(37:1)微通道。这些制造能力是传统微流控快速成型技术所不具备的。证明了3D打印的PEG - DA - 258微器件对小疏水分子的低吸收以及对培养的哺乳动物细胞的微流控标记,这表明基于PEG - DA制造基于细胞的检测、药物发现和芯片器官平台具有潜力。

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