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Print-and-Peel Fabrication for Microfluidics: What’s in it for Biomedical Applications?

机译:微流控技术的印刷和剥离加工:在生物医学应用中有什么用?

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摘要

This article reviews the development and the advances of print-and-peel (PAP) microfabrication. PAP techniques provide means for facile and expedient prototyping of microfluidic devices. Therefore, PAP has the potential for broadening the microfluidics technology by bringing it to researchers who lack regular or any accesses to specialized fabrication facilities and equipment. Microfluidics have, indeed, proven to be an indispensable toolkit for biological and biomedical research and development. Through accessibility to such methodologies for relatively fast and easy prototyping, PAP has the potential to considerably accelerate the impacts of microfluidics on the biological sciences and engineering. In summary, PAP encompasses: (1) direct printing of the masters for casting polymer device components; and (2) adding three-dimensional elements onto the masters for single-molding-step formation of channels and cavities within the bulk of the polymer slabs. Comparative discussions of the different PAP techniques, along with the current challenges and approaches for addressing them, outline the perspectives for PAP and how it can be readily adopted by a broad range of scientists and engineers.
机译:本文回顾了打印和剥离(PAP)微细加工的发展和进展。 PAP技术为微流体设备的便捷原型开发提供了手段。因此,PAP可以将微流体技术带给缺乏定期或无法获得专门制造设施和设备的研究人员,从而有可能扩展微流体技术。实际上,微流体已被证明是生物和生物医学研究与开发必不可少的工具包。通过访问此类方法以进行相对快速和简便的原型制作,PAP有潜力极大地加快微流控技术对生物科学和工程学的影响。总而言之,PAP包括:(1)直接印刷用于铸造聚合物器件组件的母版; (2)在母版上添加三维元素,以便在整个聚合物板中单步成型通道和空腔。通过对不同PAP技术的比较讨论以及当前面临的挑战和解决方案,概述了PAP的观点以及广泛的科学家和工程师如何轻松采用PAP。

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