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Characterization of 3D-Printed Moulds for Soft Lithography of Millifluidic Devices

机译:用于微流控设备软光刻的3D打印模具的表征

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摘要

Increased demand for inexpensive and rapid prototyping methods for micro- and millifluidic lab-on-a-chip (LOC) devices has stimulated considerable interest in alternative cost-effective fabrication techniques. Additive manufacturing (AM)—also called three-dimensional (3D) printing—provides an attractive alternative to conventional fabrication techniques. AM has been used to produce LOC master moulds from which positive replicas are made using soft-lithography and a biocompatible elastomer, poly(dimethylsiloxane) (PDMS). Here we characterize moulds made using two AM methods—stereolithography (SLA) and material-jetting (MJ)—and the positive replicas produced by soft lithography and PDMS moulding. The results showed that SLA, more than MJ, produced finer part resolution and finer tuning of feature geometry. Furthermore, as assessed by zebrafish (Danio rerio) biotoxicity tests, there was no toxicity observed in SLA and MJ moulded PDMS replicas. We conclude that SLA, utilizing commercially available printers and resins, combined with PDMS soft-lithography, is a simple and easily accessible technique that lends its self particularly well to the fabrication of biocompatible millifluidic devices, highly suited to the in-situ analysis of small model organisms.
机译:对微流控和微流控芯片实验室(LOC)器件的廉价,快速原型制作方法的需求日益增长,引起了人们对替代成本有效的制造技术的极大兴趣。增材制造(AM)(也称为三维(3D)打印)是常规制造技术的一种有吸引力的替代方案。 AM已用于生产LOC主模具,使用软光刻技术和生物相容性弹性体聚二甲基硅氧烷(PDMS)可以制成正副本。在这里,我们将描述使用两种AM方法(立体光刻(SLA)和材料喷射(MJ))制成的模具以及通过软光刻和PDMS成型生产的正复制品的特征。结果表明,与MJ相比,SLA产生的零件分辨率更高,特征几何图形的调整更好。此外,通过斑马鱼(Danio rerio)生物毒性测试评估,在SLA和MJ成型的PDMS复制品中未观察到毒性。我们得出的结论是,SLA利用市售的打印机和树脂与PDMS软光刻技术相结合,是一种简单易用的技术,特别适合于生物相容性微流控设备的制造,非常适合于小型现场分析模型生物。

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