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3D打印机械超材料中的程序化内部重构实现了对垂直堆叠阀阵列的流体控制。

Programmed Internal Reconfigurations in a 3D-Printed Mechanical Metamaterial Enable Fluidic Control for a Vertically Stacked Valve Array.

作者信息

Supakar Tinku, Space David, Meija Sophy, Tan Rou Yu, Alston Jeffrey R, Josephs Eric A

机构信息

Department of Nanoscience, Joint School of Nanoscience and Nanoengineering, University of North Carolina at Greensboro, Greensboro, NC, USA 27401.

Department of Biology, College of Arts and Sciences, University of North Carolina at Greensboro, Greensboro, NC, USA 27412.

出版信息

Adv Funct Mater. 2024 Aug 8;34(32). doi: 10.1002/adfm.202315419. Epub 2024 Apr 17.

Abstract

Microfluidic valves play a key role within microfluidic systems by regulating fluid flow through distinct microchannels, enabling many advanced applications in medical diagnostics, lab-on-chips, and laboratory automation. While microfluidic systems are often limited to planar structures, 3D printing enables new capabilities to generate complex designs for fluidic circuits with higher densities and integrated components. However, the control of fluids within 3D structures presents several difficulties, making it challenging to scale effectively and many fluidic devices are still often restricted to quasi-planar structures. Incorporating mechanical metamaterials that exhibit spatially adjustable mechanical properties into microfluidic systems provides an opportunity to address these challenges. Here, we have performed systematic computational and experimental characterization of a modified re-entrant honeycomb structure to generate a modular metamaterial for an active device that allows us to directly regulate flow through integrated, multiplexed fluidic channels "one-at-a-time," in a manner that is highly scalable. We present a design algorithm so that this architecture can be extended to arbitrary geometries, and we expect that by incorporation of mechanical metamaterial designs into 3D printed fluidic systems, which themselves are readily expandable to any complex geometries, will enable new biotechnological and biomedical applications of 3D printed devices.

摘要

微流控阀通过调节流经不同微通道的流体流量,在微流控系统中发挥着关键作用,从而在医学诊断、芯片实验室和实验室自动化等领域实现了许多先进应用。虽然微流控系统通常局限于平面结构,但3D打印能够生成具有更高密度和集成组件的复杂流体回路设计,从而带来了新的功能。然而,控制三维结构内的流体存在一些困难,使得有效扩展具有挑战性,并且许多流体装置仍然常常局限于准平面结构。将具有空间可调机械性能的机械超材料纳入微流控系统,为应对这些挑战提供了契机。在此,我们对一种改进的重入式蜂窝结构进行了系统的计算和实验表征,以生成一种用于有源器件的模块化超材料,该超材料使我们能够以高度可扩展的方式“一次一个”地直接调节通过集成的多路复用流体通道的流量。我们提出了一种设计算法,以便这种架构能够扩展到任意几何形状,并且我们预计,通过将机械超材料设计纳入本身易于扩展到任何复杂几何形状的3D打印流体系统中,将实现3D打印设备在生物技术和生物医学领域的新应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b47b/11486493/daac29aa2986/nihms-1977841-f0002.jpg

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