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Patterning, integration and characterisation of polymer optical oxygen sensors for microfluidic devices

机译:用于微流控设备的聚合物光学氧气传感器的图案,集成和特性

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摘要

This paper describes a process for the layer-by-layer fabrication and integration of luminescent dye-based optical oxygen sensors into microfluidic devices. Application of oxygen-sensitive platinum(n) octaethylporphyrin ketone fluorescent dye dissolved in polystyrene onto glass substrates by spin-coating was studied. Soft lithography with polydimethylsiloxane (PDMS) stamps and reactive ion etching in oxygen plasma were used to produce sensor patterns with a minimum feature size of 25 am. Sensors patterns were integrated into a PDMS microfluidic device by plasma bonding. No degradation of the sensor response as a result of the lithography and pattern-transfer processes was detected. Gaseous and dissolved oxygen (DO) detection was characterised using fluorescence microscopy. The intensity signal ratio of the sensor films was found to increase almost two-fold from 3.6 to 6.8 by reducing film thickness from 1.3 um to 0.6 um. Calibration of DO measurement showed linear Stern-Volmer behaviour that was constant for flow rates from 0.5 to 2 mL min-1. The calibrated sensors were subsequently used to demonstrate laterally resolved detection of oxygen inside a microfluidic channel. The fabrication process provides a novel, easy to use method for the repeatable integration of optical oxygen sensors into cell-culture and lab-on-a-chip devices.
机译:本文介绍了一种基于层的制造方法,并将基于发光染料的光学氧传感器集成到微流体设备中。研究了通过旋涂法将溶解在聚苯乙烯中的对氧敏感的铂(n)八乙基卟啉酮荧光染料应用于玻璃基板的方法。使用带有聚二甲基硅氧烷(PDMS)压模的软光刻技术和氧等离子体中的反应离子刻蚀来生产最小特征尺寸为25 am的传感器图案。通过等离子体键合将传感器模式集成到PDMS微流体设备中。没有检测到由于光刻和图案转移过程导致的传感器响应的下降。使用荧光显微镜对气态和溶解氧(DO)进行检测。通过将膜厚度从1.3 um减小到0.6 um,发现传感器膜的强度信号比从3.6增大到6.8,几乎增加了两倍。 DO测量的校准结果显示线性Stern-Volmer行为对于从0.5到2 mL min-1的流量是恒定的。经过校准的传感器随后用于演示微流体通道内横向分辨的氧气检测。制造过程提供了一种新颖,易于使用的方法,可将光学氧气传感器可重复地集成到细胞培养和芯片实验室设备中。

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