School of Chemical, Biological, and Environmental Engineering, Oregon State University, Corvallis, OR 97331, USA.
Lab Chip. 2021 Dec 21;22(1):9-25. doi: 10.1039/d1lc00768h.
Paper microfluidics is a rapidly growing subfield of microfluidics in which paper-like porous materials are used to create analytical devices that are well-suited for use in field applications. 3D printing technology has the potential to positively affect paper microfluidic device development by enabling tools and methods for the creation of devices with well-defined and tunable fluidic networks of porous matrices for high performance signal generation. This critical review focuses on the progress that has been made in using 3D printing technologies to advance the development of paper microfluidic devices. We describe printing work in three general categories: (i) solid support structures for paper microfluidic device components; (ii) channel barrier definition in existing porous materials; and (iii) porous channels for capillary flow, and discuss their value in advancing paper microfluidic device development. Finally, we discuss major areas of focus for highest impact on the next generation of paper microfluidics devices.
纸基微流控技术是微流控领域中一个快速发展的分支,它使用类似纸张的多孔材料来创建分析设备,非常适合现场应用。3D 打印技术有可能通过为创建具有明确定义和可调谐的多孔基质流体网络的设备提供工具和方法,从而对纸基微流控器件的发展产生积极影响,从而实现高性能信号的产生。本综述重点介绍了使用 3D 打印技术推进纸基微流控器件发展方面所取得的进展。我们将打印工作分为三类进行描述:(i)纸基微流控器件组件的固体支撑结构;(ii)现有多孔材料中通道障碍的定义;以及(iii)用于毛细流动的多孔通道,并讨论了它们在推进纸基微流控器件发展方面的价值。最后,我们讨论了对下一代纸基微流控器件影响最大的几个重点领域。