Felix Bailey M, Young Olivia M, Andreou Jordi T, Sarker Sunandita, Fuge Mark D, Krieger Axel, Weiss Clifford R, Bailey Christopher R, Sochol Ryan D
Fischell Department of Bioengineering, University of Maryland, College Park, MD, USA.
Department of Mechanical Engineering, University of Maryland, College Park, MD, USA.
Proc IEEE Int Conf Micro Electro Mech Syst. 2024 Jan;2024:1158-1161. doi: 10.1109/mems58180.2024.10439522. Epub 2024 Feb 22.
Among the numerous additive manufacturing or "three-dimensional (3D) printing" techniques, two-photon Direct Laser Writing (DLW) is distinctively suited for applications that demand high geometric versatility with micron-to-submicron-scale feature resolutions. Recently, " DLW (DLW)" has emerged as a powerful approach for printing 3D microfluidic structures directly atop meso/macroscale fluidic tubing that can be manipulated by hand; however, difficulties in creating custom DLW-compatible multilumen tubing at such scales has hindered progress. To address this impediment, here we introduce a novel methodology for fabricating submillimeter multilumen tubing for DLW 3D printing. Preliminary fabrication results demonstrate the utility of the presented strategy for resolving 743 m-in-diameter tubing with three lumens-each with an inner diameter (ID) of 80 m. Experimental results not only revealed independent flow of discrete fluorescently labelled fluids through each of the three lumens, but also effective DLW-printing of a demonstrative 3D "MEMS" microstructure atop the tubing. These results suggest that the presented approach could offer a promising pathway to enable geometrically sophisticated microfluidic systems to be 3D printed with input and/or output ports fully sealed to multiple, distinct lumens of fluidic tubing for emerging applications in fields ranging from drug delivery and medical diagnostics to soft surgical robotics.
在众多增材制造或“三维(3D)打印”技术中,双光子直接激光写入(DLW)特别适用于需要具有微米到亚微米级特征分辨率的高几何通用性的应用。最近,“DLW(DLW)”已成为一种强大的方法,可直接在可手动操作的中观/宏观尺度流体管道顶部打印3D微流体结构;然而,在这种尺度上创建与DLW兼容的定制多腔管道的困难阻碍了进展。为了解决这一障碍,我们在此介绍一种用于制造用于DLW 3D打印的亚毫米级多腔管道的新方法。初步制造结果证明了所提出策略在解决直径为743微米、具有三个内腔(每个内腔内径为80微米)的管道方面的实用性。实验结果不仅揭示了离散的荧光标记流体在三个内腔中的独立流动,还展示了在管道顶部有效进行DLW打印的示范性3D“MEMS”微结构。这些结果表明,所提出的方法可以提供一条有前景的途径,使几何结构复杂的微流体系统能够进行3D打印,其输入和/或输出端口完全密封到流体管道的多个不同内腔,以用于从药物输送、医学诊断到软手术机器人等领域的新兴应用。