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The upcoming 3D-printing revolution in microfluidics

机译:即将到来的微流体3D打印革命

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摘要

In the last two decades, the vast majority of microfluidic systems have been built in poly(dimethylsiloxane) (PDMS) by soft lithography, a technique based on PDMS micromolding. A long list of key PDMS properties have contributed to the success of soft lithography: PDMS is biocompatible, elastomeric, transparent, gas-permeable, water-impermeable, fairly inexpensive, copyright-free, and rapidly prototyped with high precision using simple procedures. However, the fabrication process typically involves substantial human labor, which tends to make PDMS devices difficult to disseminate outside of research labs, and the layered molding limits the 3D complexity of the devices that can be produced. 3D-printing has recently attracted attention as a way to fabricate microfluidic systems due to its automated, assembly-free 3D fabrication, rapidly decreasing costs, and fast-improving resolution and throughput. Resins with properties approaching those of PDMS are being developed. Here we review past and recent efforts in 3D-printing of microfluidic systems. We compare the salient features of PDMS molding with those of 3D-printing and we give an overview of the critical barriers that have prevented the adoption of 3D-printing by microfluidic developers, namely resolution, throughput, and resin biocompatibility. We also evaluate the various forces that are persuading researchers to abandon PDMS molding in favor of 3D-printing in growing numbers.
机译:在过去的二十年中,绝大多数的微流体系统已经通过软光刻技术(基于PDMS微成型技术)在聚二甲基硅氧烷(PDMS)中构建。大量的PDMS关键性能为软光刻技术的成功做出了贡献:PDMS具有生物相容性,弹性,透明性,透气性,不透水性,相当便宜,没有版权,并且可以使用简单的程序快速高精度地制作原型。但是,制造过程通常涉及大量的人工,这往往使PDMS设备难以在研究实验室之外进行分发,并且分层模制限制了可以生产的设备的3D复杂性。 3D打印由于其自动化,无装配的3D制造,迅速降低的成本以及快速提高的分辨率和通量而成为制造微流体系统的一种方法,最近引起了人们的关注。正在开发性能接近PDMS的树脂。在这里,我们回顾了微流体系统3D打印的过去和最近的努力。我们将PDMS成型与3D打印的显着特征进行了比较,并概述了阻碍微流体显影剂采用3D打印的关键障碍,即分辨率,生产量和树脂生物相容性。我们还评估了促使研究人员放弃PDMS成型以支持越来越多的3D打印的各种力量。

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