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首页> 外文期刊>Journal of Micromechanics and Microengineering >CO2 laser polishing of microfluidic channels fabricated by femtosecond laser assisted carving
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CO2 laser polishing of microfluidic channels fabricated by femtosecond laser assisted carving

机译:飞秒激光辅助雕刻制造的微流体通道的CO2激光抛光

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In this study, we investigate the effects of CO2 laser polishing on microscopic structures fabricated by femtosecond laser assisted carving (FLAC). FLAC is the peripheral laser irradiation of 2.5D structures suitable for low repetition rate lasers and is first used to define the microwell structures in fused silica followed by chemical etching. Subsequently, the bottom surface of patterned microwells is irradiated with a pulsed CO2 laser. The surfaces were characterized using an atomic force microscope (AFM) and scanning electron microscope (SEM) in terms of roughness and high quality optical imaging before and after the CO2 laser treatment. The AFM measurements show that the surface roughness improves more than threefold after CO2 laser polishing, which promises good channel quality for applications that require optical imaging. In order to demonstrate the ability of this method to produce low surface roughness systems, we have fabricated a microfluidic channel. The channel is filled with polystyrene bead-laden fluid and imaged with transmission mode microscopy. The high quality optical images prove CO2 laser processing as a practical method to reduce the surface roughness of microfluidic channels fabricated by femtosecond laser irradiation. We further compared the traditional and laser-based glass micromachining approaches, which includes FLAC followed by the CO2 polishing technique.
机译:在这项研究中,我们研究了CO2激光抛光对飞秒激光辅助雕刻(FLAC)制造的微观结构的影响。 FLAC是适用于低重复频率激光器的2.5D结构的外围激光辐照,它首先用于定义熔融石英中的微孔结构,然后进行化学蚀刻。随后,用脉冲CO 2激光照射图案化的微孔的底表面。在CO2激光处理之前和之后,使用原子力显微镜(AFM)和扫描电子显微镜(SEM)对表面进行粗糙度和高质量光学成像方面的表征。原子力显微镜的测量表明,CO2激光抛光后,表面粗糙度提高了三倍以上,对于需要光学成像的应用而言,这保证了良好的通道质量。为了证明该方法产生低表面粗糙度系统的能力,我们制造了微流体通道。通道中充满了聚苯乙烯珠粒的流体,并用透射模式显微镜成像。高质量的光学图像证明了CO2激光加工是减少飞秒激光辐照所形成的微流体通道表面粗糙度的实用方法。我们进一步比较了传统的和基于激光的玻璃微加工方法,包括FLAC和CO2抛光技术。

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