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Custom 3D printer and resin for 18 μ m × 20 μ m microfluidic flow channels

机译:定制的3D打印机和用于18μm×20μm微流体流动通道的树脂

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摘要

While there is great interest in 3D printing for microfluidic device fabrication, to-date the achieved feature sizes have not been in the truly microfluidic regime (<100 μ m). In this paper we demonstrate that a custom Digital Light Processor stereolithographic (DLP-SLA) 3D printer and a specifically-designed, low cost, custom resin can readily achieve flow channel cross sections as small as 18 μ m × 20 μ m. Our 3D printer has a projected image plane resolution of 7.6 μ m and uses a 385 nm LED, which dramatically increases the available selection of UV absorbers for resin formulation compared to 3D printers with 405 nm LEDs. Beginning with 20 candidate absorbers, we demonstrate the evaluation criteria and process flow required to develop a high-resolution resin. In doing so, we introduce a new mathematical model for characterizing the resin optical penetration depth based only on measurement of the absorber’s molar absorptivity. Our final resin formulation uses 2-nitrophenyl phenyl sulfide (NPS) as the UV absorber. We also develop a novel channel narrowing technique that, together with the new resin and 3D printer resolution, enables small flow channel fabrication. We demonstrate the efficacy of our approach by fabricating 3D serpentine flow channels 41 mm long in a volume of only 0.12 mm3, and by printing high aspect ratio flow channels <25 μ m wide and 3 mm tall. These results indicate that 3D printing is finally positioned to challenge the pre-eminence of methods such as soft lithography for microfluidic device prototyping and fabrication.
机译:尽管对用于微流体装置制造的3D打印非常感兴趣,但迄今为止,实现的特征尺寸还没有真正处于微流体状态(<100μm)。在本文中,我们演示了定制的数字光处理器立体光刻(DLP-SLA)3D打印机和专门设计的低成本定制树脂可以轻松实现小至18μm×20μm的流道横截面。我们的3D打印机的投影图像平面分辨率为7.6μm,并使用385 nm LED,与具有405 nm LED的3D打印机相比,它大大增加了用于树脂配方的紫外线吸收剂的选择。从20种候选吸收剂开始,我们演示了开发高分辨率树脂所需的评估标准和工艺流程。为此,我们引入了一个新的数学模型,用于仅基于吸收剂摩尔吸收率的测量来表征树脂的光学渗透深度。我们最终的树脂配方使用2-硝基苯基苯硫醚(NPS)作为紫外线吸收剂。我们还开发了一种新颖的通道收窄技术,与新的树脂和3D打印机分辨率一起,可实现小流量通道的制造。通过制造41mm长,体积仅为0.12 mm 3 的3D蛇形流道,以及打印宽宽比小于25μm,高3 mm的高纵横比流道,我们证明了该方法的有效性。这些结果表明,3D打印最终将挑战微流控设备原型设计和制造的方法,例如软光刻技术。

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