Fabrication of polyimide microfluidic devices by laser ablation based additive manufacturing
Autor: | Xingjian Hu, Mingzhao Guo, Fan Yang, Haiyan Zhao, Jiayun Pei, Yujun Wang |
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Rok vydání: | 2019 |
Předmět: |
010302 applied physics
Microchannel Materials science Laser ablation Fabrication business.industry Microfluidics Layer by layer 02 engineering and technology 021001 nanoscience & nanotechnology Condensed Matter Physics 01 natural sciences Electronic Optical and Magnetic Materials chemistry.chemical_compound Fluorinated ethylene propylene chemistry Hardware and Architecture 0103 physical sciences Optoelectronics Adhesive Electrical and Electronic Engineering 0210 nano-technology business Polyimide |
Zdroj: | Microsystem Technologies. 26:1573-1583 |
ISSN: | 1432-1858 0946-7076 |
DOI: | 10.1007/s00542-019-04698-4 |
Popis: | Polyimide microfluidic devices (MFDs) have been attached enormous significance because of its excellent organic-solvent inertness, biocompatibility, and thermal stability. In this paper, a novel fabrication method based on the thought of additive manufacturing, which is adding materials layer by layer from bottom to top, was used to construct a multilayer polyimide MFD. The MFD has sophisticated three-dimensional (3D) microchannels with adjustable cross-sectional geometries and high bonding strength, which leads to good reagent mixing performance, large surface-to-volume ratio, and great durability. Starting from a single polyimide film, ultraviolet (UV) laser was utilized to ablate microchannels on the film. Due to the studies over the influence of UV laser on the channel width, the microchannel edge shape is under control, varying from trapezoid to rectangle. From monolayer to multilayer MFDs, thermal bonding with fluorinated ethylene propylene (FEP) nanoparticle dispersion as the adhesive was adopted to stack polyimide films tightly with precise alignment. In this way, microchannels can be connected vertically between layers to form 3D structures. Besides, a homogeneous adhesive interlayer and polyimide-FEP mixing regime were formed, which can provide high bonding strength. Results of computational fluid dynamics simulation of 3D microchannel structures and organic synthesis experiment revealed that our device has great reagent mixing efficiency and promising application prospects in diverse research fields, especially organic chemical and biological studies. |
Databáze: | OpenAIRE |
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