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Microwave sensing and heating of individual droplets in microfluidic devices

机译:微波感应和加热微流控设备中的单个液滴

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Droplet-based microfluidics is an emerging high-throughput screening technology finding applications in a variety of areas such as life science research, drug discovery and material synthesis. In this paper we present a cost-effective, scalable microwave system that can be integrated with microfluidic devices enabling remote, simultaneous sensing and heating of individual nanoliter-sized droplets generated in microchannels. The key component of this microwave system is an electrically small resonator that is able to distinguish between materials with different electrical properties {i.e. permittivity, conductivity). The change in these properties causes a shift in the operating frequency of the resonator, which can be used for sensing purposes. Alternatively, if microwave power is delivered to the sensing region at the frequency associated with a particular material (;.e. droplet), then only this material receives the power while passing the resonator leaving the surrounding materials (i.e. carrier fluid and chip material) unaffected. Therefore this method allows sensing and heating of individual droplets to be inherently synchronized, eliminating the need for external triggers. We confirmed the performance of the sensor by applying it to differentiate between various dairy fluids, identify salt solutions and detect water droplets with different glycerol concentrations. We experimentally verified that this system can increase the droplet temperature from room temperature by 42 °C within 5.62 ms with an input power of 27 dBm. Finally we employed this system to thermally initiate the formation of hydrogel particles out of the droplets that are being heated by this system.
机译:基于液滴的微流体技术是一种新兴的高通量筛选技术,可在生命科学研究,药物发现和材料合成等多个领域中找到应用。在本文中,我们提出了一种经济高效,可扩展的微波系统,该系统可与微流体设备集成在一起,从而能够对微通道中产生的各个纳升大小的液滴进行远程,同时感应和加热。该微波系统的关键组件是一个小型电谐振器,它能够区分具有不同电特性的材料(即介电常数,电导率)。这些特性的变化导致谐振器的工作频率发生偏移,该偏移可用于感测目的。替代地,如果微波功率以与特定材料(即,液滴)相关联的频率被传递到感测区域,则只有该材料在通过谐振器时接收功率,而离开周围材料(即,载液和芯片材料)。不受影响。因此,该方法可以使各个液滴的感测和加热在本质上保持同步,从而无需外部触发器。我们通过将其用于区分各种乳制品液,识别盐溶液并检测具有不同甘油浓度的水滴,来确认该传感器的性能。我们通过实验验证了该系统可以在5.62毫秒内以27 dBm的输入功率将液滴温度从室温提高42°C。最终,我们采用该系统从由该系统加热的液滴中热引发水凝胶颗粒的形成。

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