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可定制的 3D 打印微流控芯片用于集成分析和优化。

Customisable 3D printed microfluidics for integrated analysis and optimisation.

机构信息

Wolfson School of Mechanical and Manufacturing Engineering, Loughborough University, Ashby Road, Loughborough, LE11 3TU, UK.

Department of Chemistry, Loughborough University, Epinal Way, Loughborough, LE11 3TU, UK.

出版信息

Lab Chip. 2016 Aug 16;16(17):3362-73. doi: 10.1039/c6lc00562d.

Abstract

The formation of smart Lab-on-a-Chip (LOC) devices featuring integrated sensing optics is currently hindered by convoluted and expensive manufacturing procedures. In this work, a series of 3D-printed LOC devices were designed and manufactured via stereolithography (SL) in a matter of hours. The spectroscopic performance of a variety of optical fibre combinations were tested, and the optimum path length for performing Ultraviolet-visible (UV-vis) spectroscopy determined. The information gained in these trials was then used in a reaction optimisation for the formation of carvone semicarbazone. The production of high resolution surface channels (100-500 μm) means that these devices were capable of handling a wide range of concentrations (9 μM-38 mM), and are ideally suited to both analyte detection and process optimisation. This ability to tailor the chip design and its integrated features as a direct result of the reaction being assessed, at such a low time and cost penalty greatly increases the user's ability to optimise both their device and reaction. As a result of the information gained in this investigation, we are able to report the first instance of a 3D-printed LOC device with fully integrated, in-line monitoring capabilities via the use of embedded optical fibres capable of performing UV-vis spectroscopy directly inside micro channels.

摘要

具有集成传感光学功能的智能片上实验室(LOC)设备的形成目前受到复杂且昂贵的制造工艺的阻碍。在这项工作中,通过立体光刻(SL)在数小时内设计并制造了一系列 3D 打印的 LOC 设备。测试了各种光纤组合的光谱性能,并确定了执行紫外-可见(UV-vis)光谱的最佳路径长度。然后,将这些试验中获得的信息用于形成香芹酮半卡巴腙的反应优化。高分辨率表面通道(100-500μm)的生产意味着这些设备能够处理广泛的浓度范围(9μM-38mM),非常适合分析物检测和过程优化。这种能够根据正在评估的反应直接定制芯片设计及其集成功能的能力,以如此低的时间和成本代价极大地提高了用户优化其设备和反应的能力。由于本研究获得的信息,我们能够首次报告一种具有完全集成的在线监测功能的 3D 打印 LOC 设备,该设备通过使用能够直接在微通道内执行 UV-vis 光谱的嵌入式光纤实现。

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