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Cost-effective rapid prototyping and assembly of poly(methyl methacrylate) microfluidic devices

机译:聚甲基丙烯酸甲酯微流控设备的经济高效快速原型设计和组装

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摘要

The difficulty in translating conventional microfluidics from laboratory prototypes to commercial products has shifted research efforts towards thermoplastic materials for their higher translational potential and amenability to industrial manufacturing. Here, we present an accessible method to fabricate and assemble polymethyl methacrylate (PMMA) microfluidic devices in a “mask-less” and cost-effective manner that can be applied to manufacture a wide range of designs due to its versatility. Laser micromachining offers high flexibility in channel dimensions and morphology by controlling the laser properties, while our two-step surface treatment based on exposure to acetone vapour and low-temperature annealing enables improvement of the surface quality without deformation of the device. Finally, we demonstrate a capillarity-driven adhesive delivery bonding method that can produce an effective seal between PMMA devices and a variety of substrates, including glass, silicon and LiNbO3. We illustrate the potential of this technique with two microfluidic devices, an H-filter and a droplet generator. The technique proposed here offers a low entry barrier for the rapid prototyping of thermoplastic microfluidics, enabling iterative design for laboratories without access to conventional microfabrication equipment.
机译:将常规微流体从实验室原型转化为商业产品的困难,已将研究努力转向了热塑性材料,因为它们具有更高的转化潜力和对工业制造的适应性。在这里,我们提出了一种可访问的方法,以“无掩膜”和经济高效的方式来制造和组装聚甲基丙烯酸甲酯(PMMA)微流控设备,由于其多功能性,可以用于制造各种设计。激光微加工可通过控制激光特性在通道尺寸和形态上提供高度的灵活性,而我们基于暴露于丙酮蒸气和低温退火的两步表面处理可提高表面质量而不会导致器件变形。最后,我们演示了一种由毛细作用驱动的粘合剂输送粘合方法,该方法可以在PMMA器件与各种基材(包括玻璃,硅和LiNbO3)之间产生有效的密封。我们用两个微流体装置,H过滤器和液滴发生器说明了该技术的潜力。此处提出的技术为热塑性微流体的快速原型制造提供了较低的进入壁垒,从而无需使用传统的微加工设备即可对实验室进行迭代设计。

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