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热致电湿润喷射直写微流控通道。

Direct Writing of Microfluidic Footpaths by Pyro-EHD Printing.

机构信息

Institute of Applied Sciences and Intelligent System (CNR-ISASI) , Via Campi Flegrei 34, 80078 Pozzuoli (NA), Italy.

出版信息

ACS Appl Mater Interfaces. 2017 May 17;9(19):16488-16494. doi: 10.1021/acsami.7b02633. Epub 2017 May 5.

Abstract

In this study, we report a direct writing method for the fabrication of microfluidic footpaths by pyro-electrohydrodynamic (EHD) jet printing. Here, we propose the use of a nozzle-free three-dimensional printing technique for the fabrication of printed structures that can be embedded in a variety of soft, transparent, flexible, and biocompatible polymers and thus easily integrated into lab-on-chip devices. We prove the advantage of the high resolution and flexibility of pyro-EHD printing for the realization of microfluidic channels well below the standard limit in dimension of conventional ink-jet printing technique and simply adaptable to the end-user desires in terms of geometry and materials. Starting from the description of the innovative approach proposed for the channel fabrication, we demonstrate the design, fabrication, and proof of a microfluidic matrix of interconnected channels. The method described here could be a breakthrough technology for the fabrication of in situ implantable, stretchable, and biocompatible devices, opening new routes in the field of biomedical engineering and wearable electronics.

摘要

在本研究中,我们报告了一种通过热电气动力学(EHD)射流印刷直接书写微流道的方法。在这里,我们提出了使用无喷嘴的三维打印技术来制造可嵌入各种柔软、透明、灵活和生物相容聚合物中的打印结构,从而可以轻松集成到芯片实验室设备中。我们证明了热 EHD 打印在实现微流道方面的高分辨率和灵活性的优势,其可以低于传统喷墨打印技术的标准尺寸限制,并且可以根据用户的需求灵活地适应几何形状和材料。从所提出的用于通道制造的创新方法的描述开始,我们展示了互连通道的微流控矩阵的设计、制造和验证。这里描述的方法可能是制造原位可植入、可拉伸和生物相容器件的突破性技术,为生物医学工程和可穿戴电子领域开辟了新途径。

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