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FDM 3D Printing of High-Pressure, Heat-Resistant, Transparent Microfluidic Devices

机译:FDM 3D打印高压,耐热,透明的微流体装置

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摘要

Transparent surfaces within microfluidic devices are essential for accurate quantification of chemical, biological, and mechanical interactions. Here, we report how to create low-cost, rapid 3D-printed microfluidic devices that are optically free from artifacts and have transparent surfaces suitable for visualizing a variety of fluid phenomenon. The methodology described here can be used for creating high-pressure microfluidic systems (significantly higher than PDMS glass bonding). We develop methods for annealing Poly-Lactic Acid (PLA) microfluidic devices demonstrating heat resistance typically not achievable with other plastic materials. We show DNA melting and subsequent fluorescent imaging analysis, opening the door to other high-temperature applications. The FDM techniques demonstrated here allow for fabrication of microfluidic devices for precise visualization of interfacial dynamics, whether mixing between two laminar streams or droplet tracking. In addition to these characterizations, we include a printer troubleshooting guide and printing recipes for device fabrication to facilitate FDM printing for microfluidic device development.
机译:微流体装置内的透明表面对于精确定量化学,生物和机械相互作用是必不可少的。在这里,我们报告了如何创建低成本,快速3D印刷的微流体装置,其光学不含伪像,并且具有适合可视化各种流体现象的透明表面。这里描述的方法可用于创建高压微流体系统(显着高于PDMS玻璃键合)。我们开发用于退火的多乳酸(PLA)微流体器件的方法,所述微流体装置通常不能与其他塑料材料可实现的耐热性。我们展示DNA熔化和随后的荧光成像分析,向其他高温应用打开门。这里证明的FDM技术允许制造微流体装置,以便精确可视化界面动力学,无论是两个层流还是液滴跟踪之间的混合。除了这些特征外,我们还包括打印机故障排除指南和用于设备制造的传纸配方,以便于用于微流体装置的FDM打印。

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