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用于多功能微流控的3D打印自支撑弹性体结构

3D printed self-supporting elastomeric structures for multifunctional microfluidics.

作者信息

Su Ruitao, Wen Jiaxuan, Su Qun, Wiederoder Michael S, Koester Steven J, Uzarski Joshua R, McAlpine Michael C

机构信息

Department of Mechanical Engineering, University of Minnesota, Minneapolis, MN 55455, USA.

Department of Electrical and Computer Engineering, University of Minnesota, Minneapolis, MN 55455, USA.

出版信息

Sci Adv. 2020 Oct 9;6(41). doi: 10.1126/sciadv.abc9846. Print 2020 Oct.

Abstract

Microfluidic devices fabricated via soft lithography have demonstrated compelling applications such as lab-on-a-chip diagnostics, DNA microarrays, and cell-based assays. These technologies could be further developed by directly integrating microfluidics with electronic sensors and curvilinear substrates as well as improved automation for higher throughput. Current additive manufacturing methods, such as stereolithography and multi-jet printing, tend to contaminate substrates with uncured resins or supporting materials during printing. Here, we present a printing methodology based on precisely extruding viscoelastic inks into self-supporting microchannels and chambers without requiring sacrificial materials. We demonstrate that, in the submillimeter regime, the yield strength of the as-extruded silicone ink is sufficient to prevent creep within a certain angular range. Printing toolpaths are specifically designed to realize leakage-free connections between channels and chambers, T-shaped intersections, and overlapping channels. The self-supporting microfluidic structures enable the automatable fabrication of multifunctional devices, including multimaterial mixers, microfluidic-integrated sensors, automation components, and 3D microfluidics.

摘要

通过软光刻制造的微流控装置已展现出引人注目的应用,如芯片实验室诊断、DNA微阵列和基于细胞的检测。这些技术可以通过将微流控技术与电子传感器和曲线形基板直接集成,以及改进自动化以实现更高通量来进一步发展。当前的增材制造方法,如立体光刻和多喷射印刷,在打印过程中往往会用未固化的树脂或支撑材料污染基板。在此,我们提出一种打印方法,该方法基于将粘弹性油墨精确挤出到自支撑微通道和腔室中,而无需牺牲材料。我们证明,在亚毫米范围内,挤出的硅酮油墨的屈服强度足以在一定角度范围内防止蠕变。打印刀具路径经过专门设计,以实现通道与腔室之间、T形交叉点以及重叠通道之间的无泄漏连接。这种自支撑微流控结构能够自动制造多功能装置,包括多材料混合器、微流控集成传感器、自动化组件和3D微流控装置。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b4ff/7546717/85d4b8feed26/abc9846-F1.jpg

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