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Label-free high-throughput detection and content sensing of individual droplets in microfluidic systems

机译:微流控系统中单个液滴的无标记高通量检测和内容感测

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This study reports a microwave-microfluidics integrated approach capable of performing droplet detection at high-throughput as well as content sensing of individual droplets without chemical or physical intrusion. The sensing system consists of a custom microwave circuitry and a spiral-shaped microwave resonator that is integrated with microfluidic chips where droplets are generated. The microwave circuitry is very cost effective by using off-the-shelf components only. It eliminates the need for bulky benchtop equipment, and provides a compact, rapid and sensitive tool compatible for Lab-on-a-Chip (LOC) platforms. To evaluate the resonator's sensing capability, it was first applied to differentiate between single-phase fluids which are aqueous solutions with different concentrations of glucose and potassium chloride respectively by measuring its reflection coefficient as a function of frequency. The minimum concentration assessed was 0.001 g ml(-1) for potassium chloride and 0.01 g ml(-1) for glucose. In the droplet detection experiments, it is demonstrated that the microwave sensor is able to detect droplets generated at as high throughput as 3.33 kHz. Around two million droplets were counted over a period of ten minutes without any missing. For droplet sensing experiments, pairs of droplets that were encapsulated with biological materials were generated alternatively in a double T-junction configuration and clearly identified by the microwave sensor. The sensed biological materials include fetal bovine serum, penicillin antibiotic mixture, milk (2% mf) and D-(+)-glucose. This system has significant advantages over optical detection methods in terms of its cost, size and compatibility with LOC settings and also presents significant improvements over other electrical-based detection techniques in terms of its sensitivity and throughput.
机译:这项研究报告了一种微波-微流体集成方法,该方法能够以高通量执行液滴检测,并且可以感测单个液滴的含量,而不会发生化学或物理侵入。传感系统包括一个定制的微波电路和一个螺旋形的微波谐振器,该谐振器与微流体芯片集成在一起,在微流体芯片中会产生液滴。仅使用现成的组件,微波电路具有很高的成本效益。它消除了对大型台式设备的需求,并提供了一种与片上实验室(LOC)平台兼容的紧凑,快速和灵敏的工具。为了评估谐振器的感应能力,首先将其用于区分单相流体,这些单相流体分别是葡萄糖和氯化钾浓度不同的水溶液,方法是测量其反射系数随频率的变化。评估的最低浓度为氯化钾为0.001 g ml(-1),葡萄糖为0.01 g ml(-1)。在液滴检测实验中,证明了微波传感器能够检测以高达3.33 kHz的通量产生的液滴。在十分钟的时间内计数了约200万滴,没有任何遗漏。对于液滴感测实验,交替生成双T形结并用生物材料封装的成对液滴,并通过微波传感器清楚地识别。所感测的生物材料包括胎牛血清,青霉素抗生素混合物,牛奶(2%mf)和D-(+)-葡萄糖。就成本,尺寸和与LOC设置的兼容性而言,该系统比光学检测方法具有显着优势,并且就灵敏度和吞吐量而言,该系统相对于其他基于电子的检测技术也具有显着改进。

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