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ONE-STEP 3D MICROSTRUCTURE FABRICATION INSIDE PMMA BY USING A FEMTOSECOND LASER

机译:使用Femtosecond激光器在PMMA内部的一步3D微结构制造

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Femtosecond laser induced locally optical breakdown inside some transparent bulk material have been widely studied in recent two decades. Nowadays, hollow structures can be precisely designed and fabricated inside photosensitive glass, fused silica and porous glass. However, PMMA, as a important polymeric material with superior optical property which is widely used in Micro Total Analysis System (μTAS) was rarely reported in recent studies about laser bulk manufacturing. Only a few reports indicated hollow structures can be made inside PMMA in one-step with the help of femtosecond laser focused by a high NA objective lens. The channel of which was in a diameter of several hundreds of nanometer, which is regarded as a premature product of microfluidic chips because only a few injection techniques and liquid driven methods can be used in nanofluidic systems. In this paper, we present a method to fabricate a 7 mm long 3D hollow channel inside a 1 mm thick PMMA slice with a diameter among 100 ~ 150 μm with the help of a Ti: sapphire regenerative amplifier laser system focused by a long working distance (3.4 mm), low NA (100×/0.8) objective. High power density of femtosecond laser induced optical breakdown is regarded as the main factor to fulfill hollow structure inside PMMA. Heat accumulation effect also play an important role in this process.
机译:近二十年来,Femtosecond激光在一些透明的散装材料内局部光学击穿在一些透明的散装材料中。如今,中空结构可以精确地设计和制造在光敏玻璃,熔融二氧化硅和多孔玻璃内。然而,在最近关于激光散装制造的研究中,PMMA作为具有优异光学性质的重要聚合物材料,其很少被广泛用于微量分析系统(μTAS)。只有少数报道表明空心结构可以在由高NA物镜的飞秒激光的帮助下在一步中在PMMA内进行一步。其直径为几百纳米的通道,其被认为是微流体芯片的早产,因为只有少数注射技术和液体驱动方法可用于纳米流体系统。在本文中,我们提出了一种方法来制造在1mm厚的PMMA切片内部的7mm长3D中空通道,在Ti的帮助下,通过Ti:蓝宝石再生放大器激光系统,通过长工作距离聚焦(3.4毫米),低Na(100×/ 0.8)目标。 Femtosecond激光诱导光学击穿的高功率密度被认为是PMMA内部满足空心结构的主要因素。热累积效果也在这一过程中发挥着重要作用。

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