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Magnetic optical sensor particles: a flexible analytical tool for microfluidic devices

机译:磁性光学传感器颗粒:用于微流体设备的灵活分析工具

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摘要

In this study we evaluate magnetic optical sensor particles (MOSePs) with incorporated sensing functionalities regarding their applicability in microfluidic devices. MOSePs can be separated from the surrounding solution to form in situ sensor spots within microfluidic channels, while read-out is accomplished outside the chip. These magnetic sensor spots exhibit benefits of sensor layers (high brightness and convenient usage) combined with the advantages of dispersed sensor particles (ease of integration). The accumulation characteristics of MOSePs with different diameters were investigated as well as the in situ sensor spot stability at varying flow rates. Magnetic sensor spots were stable at flow rates specific to microfluidic applications. Furthermore, MOSePs were optimized regarding fiber optic and imaging read-out systems, and different referencing schemes were critically discussed on the example of oxygen sensors. While the fiber optic sensing system delivered precise and accurate results for measurement in microfluidic channels, limitations due to analyte consumption were found for microscopic oxygen imaging. A compensation strategy is provided, which utilizes simple pre-conditioning by exposure to light. Finally, new application possibilities were addressed, being enabled by the use of MOSePs. They can be used for microscopic oxygen imaging in any chip with optically transparent covers, can serve as flexible sensor spots to monitor enzymatic activity or can be applied to form fixed sensor spots inside microfluidic structures, which would be inaccessible to integration of sensor layers.
机译:在这项研究中,我们评估了结合了传感功能的磁性光学传感器颗粒(MOSePs)在微流体设备中的适用性。可以将MOSeP与周围的溶液分离,从而在微流体通道内形成原位传感器点,同时在芯片外部完成读出。这些磁性传感器点具有传感器层的优点(高亮度和方便使用),以及分散的传感器颗粒的优点(易于集成)。研究了不同直径的MOSeP的累积特性,以及在不同流速下的原位传感器光斑稳定性。磁传感器斑点在微流体应用特有的流速下稳定。此外,针对光纤和成像读取系统对MOSeP进行了优化,并且在氧气传感器的示例中严格讨论了不同的参考方案。尽管光纤传感系统为在微流体通道中进行测量提供了准确而准确的结果,但在显微氧气成像中却发现了由于分析物消耗造成的限制。提供了一种补偿策略,该策略通过暴露于光来利用简单的预处理。最后,通过使用MOSeP实现了新的应用可能性。它们可用于具有光学透明盖的任何芯片中的显微氧气成像,可充当柔性传感器斑点以监测酶活性,或可用于在微流体结构内部形成固定的传感器斑点,这对于传感器层的集成是不可访问的。

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