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An ultrahigh frequency dielectric sensor for microdroplet detection using a split ring resonator-based microfluidic chip

机译:一种使用基于开口环谐振器的微流控芯片进行微液滴检测的超高频介电传感器

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Metamaterials have drawn interest in the sensor community due to their extreme dielectric-sensitive resonant behavior. Although these structures are studied in a wide range of frequencies, the ultrahigh frequencies are of special interest due to their compatibility with RF electronics. Unlike spectroscopic methods, where each material has its specific fingerprint, the response of these resonant structures depends on the electromagnetic properties, the volume of the material under test, and the resonator's design itself. Thus, implementing a metamaterial-based sensor for biological and chemical applications requires some mechanism to fix the sample's location and volume. Since most biological and chemical samples are liquids, microfluidics is the most promising candidate for this task. Here, we propose a dielectric sensing platform with a cost-effective fabrication method that allows fluid detection inside the microfluidic channel. The device proposed here is designed numerically, fabricated and measured, and finally validated via an analytical lumped model. It consists of a microstrip line coupled with a split ring resonator as the transducer and a microfluidic structure to control the sample and generate microdroplets. The fluid under test inside the microfluidic channel can be characterized based on the change in its dielectric constant or loss factor. The device shows a 600 kHz resonance shift in response to the dielectric change in sample volumes as low as 10 nl. We also demonstrate the platform's capability to generate and detect octanol-water microdroplets. The method reported here offers a fast prototyping method suitable for various microfluidic sensing applications.
机译:超材料因其极端的介电敏感谐振行为而引起了传感器界的兴趣。尽管这些结构在很宽的频率范围内进行了研究,但由于超高频与射频电子器件兼容,因此人们特别感兴趣。与每种材料都有其特定指纹的光谱方法不同,这些谐振结构的响应取决于电磁特性、被测材料的体积以及谐振器本身的设计。因此,为生物和化学应用实施基于超材料的传感器需要某种机制来固定样品的位置和体积。由于大多数生物和化学样品都是液体,因此微流体是这项任务最有前途的候选者。在这里,我们提出了一种介电传感平台,该平台具有经济高效的制造方法,允许在微流体通道内进行流体检测。这里提出的设备是经过数值设计、制造和测量的,最后通过分析集总模型进行验证。它由一条微带线和一个作为传感器的开口环谐振器耦合,以及一个微流体结构来控制样品并产生微液滴。微流体通道内的被测流体可以根据其介电常数或损耗因子的变化来表征。该器件显示出 600 kHz 的谐振偏移,以响应低至 10 nl 的样品体积的介电变化。我们还演示了该平台生成和检测辛醇-水微滴的能力。这里报告的方法提供了一种适用于各种微流体传感应用的快速原型制作方法。

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