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Smaller, smarter, faster: the development and application of microfluidic devices to the determination of phosphorus in natural waters

机译:更小,更智能,更快:微流体装置的开发和应用,用于测定天然水中的磷

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摘要

The development of a miniaturised microfluidic instrument for monitoring phosphorus in natural waters from the optimisation of the chemistry through to the fabrication of the microfluidic manifold in polymeric materials is presented. The research initially was concerned with optimising the yellow colorimetric method for a phosphate determination and its transferral to a Si-etched microfluidic chip configuration. Th is simple method employs one reagent mixed in a 1:1 ratio with an orthophosphate-containing sample to produce a yellow colour absorbing strongly below 400nm.ududA stopped flow approach is used which, together with the very rapid kinetics and simple reagent stream, enables a very uncomplicated microfluidic manifold design to be adopted. The working wavelength wa s 380nm, which coincided with the peak output of a recently developed U V -L E D narrow bandwidth light source. The limit of detection for the yellow method is 0.2 mgL'1 P O ^ - P with a linear range from 0 - 5 0 mgL*1 P O 43“ - P possible. T h e reaction time at room temperature is less than 3 minutes, which m ean s up to 20 sam ple s / hour can be analysed.ududThe next stage in the research involved applying the results obtained in the Sietched microfluidic chips to the design and fabrication of a microfluidic manifold in polymer materials. Chips were made by a combination of microfabrication techniques including a C 0 2 laser ablation, hot embossing and micromilling. Transferring the technology to a polymeric platform required a whole new set of experiments to be undertaken. The key is su e s add ressed were multiple layer alignment, optical detection, bonding of polymeric materials; the provision of leakfree fluidic interconnects to external tubing and reproducible analytical measurements.
机译:提出了一种微型化的微流控仪器的开发,该仪器可用于监测天然水中的磷,从化学优化到制备高分子材料中的微流控歧管。最初的研究涉及优化黄色比色法用于磷酸盐的测定及其向硅蚀刻微流体芯片结构的转移。这种简单的方法是将一种试剂与含正磷酸盐的样品按1:1比例混合,以产生在400nm以下强烈吸收的黄色。 ud ud使用了停流方法,它具有非常快速的动力学和简单的试剂流,使得可以采用非常简单的微流体歧管设计。工作波长为380nm,与最近开发的U V -L E D窄带宽光源的峰值输出一致。黄色方法的检出限为0.2 mgL'1 P O ^-P,线性范围为0-5 0 mgL * 1 P O 43”-P。室温下的反应时间少于3分钟,最多可分析20个样品/小时。 ud ud研究的下一阶段涉及将Sietched微流控芯片获得的结果应用于设计和制造聚合物材料中的微流体歧管。芯片是通过结合微加工技术(包括C 0 2激光烧蚀,热压花和微铣削)制成的。将技术转移到聚合物平台需要进行全新的实验。关键是要增加多层对准,光学检测,聚合材料的粘接。为外部管路提供无泄漏的流体互连,并提供可重复的分析测量。

著录项

  • 作者

    Bowden Michaela;

  • 作者单位
  • 年度 2003
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  • 原文格式 PDF
  • 正文语种 en
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