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飞秒激光在块状聚甲基丙烯酸甲酯内部直接生成三维微流体通道。

Femtosecond laser direct generation of 3D-microfluidic channels inside bulk PMMA.

作者信息

Roth Gian-Luca, Esen Cemal, Hellmann Ralf

出版信息

Opt Express. 2017 Jul 24;25(15):18442-18450. doi: 10.1364/OE.25.018442.

Abstract

We report on laser direct generation of 3D-microchannels for microfluidic applications inside PMMA bulk material by focused femtosecond pulses. Inner lying channels with cross sectional areas from 100 µm to 4400 µm are directly created in the volume of a PMMA substrate. Using the presented process, the channel length is fundamentally unlimited. Here we demonstrate a channel length of 6 meters inside a substrate with dimensions of 20 × 20 × 1.1 mm. The formation of the micro channels is based on nonlinear absorption around the focal volume that triggers a material modification. The modified volume can be selectively opened to form the channel by a subsequent annealing process. The cross section of the channel is strongly influenced by the energy distribution and illumination around the focal volume determined by the optical setup and process design. The 3D channel layout can easily be realized by moving the specimen using 3D motorized stage, allowing freely chosen complex shaped channel architectures. Within a comprehensive parameter study, varying laser power, number of multi-passes, writing speed and writing depths, we identify an optimized process in terms of attainable channel height, width and aspect ratio, as well as process stability and reproducibility. The proof of concept for an application in three dimensional microfluidic systems is provided by florescence microscopy using a dye rhodamine B solution in isopropanol.

摘要

我们报道了通过聚焦飞秒脉冲在聚甲基丙烯酸甲酯(PMMA)块状材料内部直接激光生成用于微流体应用的三维微通道。在PMMA基板的体积内直接创建了横截面面积从100 µm到4400 µm的内部通道。使用所提出的工艺,通道长度从根本上来说是不受限制的。在这里,我们展示了在尺寸为20×20×1.1 mm的基板内6米长的通道。微通道的形成基于焦点体积周围的非线性吸收,这会引发材料改性。通过随后的退火工艺,可以选择性地打开改性体积以形成通道。通道的横截面受到由光学设置和工艺设计所确定的焦点体积周围的能量分布和照明的强烈影响。通过使用三维电动平台移动样品,可以轻松实现三维通道布局,从而实现自由选择的复杂形状的通道架构。在一项全面的参数研究中,我们改变了激光功率、多程次数、写入速度和写入深度,确定了在可实现的通道高度、宽度和纵横比以及工艺稳定性和可重复性方面的优化工艺。使用异丙醇中的罗丹明B染料溶液进行荧光显微镜观察,为三维微流体系统中的应用提供了概念验证。

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