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用于 25GHz 微波加热的叉指电容器和连续微流控中 nl 体积的宽带介电传感。

An Interdigital Capacitor for Microwave Heating at 25 GHz and Wideband Dielectric Sensing of nL Volumes in Continuous Microfluidics.

机构信息

Division ESAT-TELEMIC, KU Leuven, Kasteelpark Arenberg 10 box 2444, 3001 Leuven, Belgium.

imec, imec PERSYBE Group, Kapeldreef 75, 3001 Heverlee, Belgium.

出版信息

Sensors (Basel). 2019 Feb 10;19(3):715. doi: 10.3390/s19030715.

Abstract

This paper proposes a miniature microwave-microfluidic chip based on continuous microfluidics and a miniature interdigital capacitor (IDC). The novel chip consists of three individually accessible heaters, three platinum temperature sensors and two liquid cooling and mixing zones. The IDC is designed to achieve localized, fast and uniform heating of nanoliter volumes flowing through the microfluidic channel. The heating performance of the IDC located on the novel chip was evaluated using a fluorescent dye (Rhodamine B) diluted in demineralized water on a novel microwave-optical-fluidic (MOF) measurement setup. The MOF setup allows simultaneous microwave excitation of the IDC by means of a custom-made printed circuit board (connected to microwave equipment) placed in a top stage of a microscope, manipulation of liquid flowing through the channel located over the IDC with a pump and optical inspection of the same liquid flowing over the IDC using a fast camera, a light source and the microscope. The designed IDC brings a liquid volume of around 1.2 nL from room temperature to 100 °C in 21 ms with 1.58 W at 25 GHz. Next to the heating capability, the designed IDC can dielectrically sense the flowing liquid. Liquid sensing was evaluated on different concentration of water-isopropanol mixtures, and a reflection coefficient magnitude change of 6 dB was recorded around 8.1 GHz, while the minimum of the reflection coefficient magnitude shifted in the same frequency range for 60 MHz.

摘要

本文提出了一种基于连续微流控和微型叉指电容 (IDC) 的微型微波微流控芯片。该新型芯片由三个独立可访问的加热器、三个铂温度传感器和两个液体冷却和混合区组成。IDC 旨在实现通过微流道流动的纳升级体积的局部、快速和均匀加热。在新型微波光学流体 (MOF) 测量设置上,使用在去离子水中稀释的荧光染料 (Rhodamine B) 评估了位于新型芯片上的 IDC 的加热性能。MOF 设置允许通过放置在显微镜顶台上的定制印刷电路板 (连接到微波设备) 对 IDC 进行同时微波激励,使用泵对位于 IDC 上方的通道中的液体进行操作,使用快速相机、光源和显微镜对流过 IDC 的相同液体进行光学检查。设计的 IDC 在 25 GHz 时以 1.58 W 的功率将 1.2 nL 左右的液体体积从室温加热到 100°C 仅需 21 ms。除了加热能力外,设计的 IDC 还可以对流动的液体进行介电感应。在不同浓度的水-异丙醇混合物上评估了液体感应,在 8.1 GHz 时记录到反射系数幅度变化 6 dB,而反射系数幅度的最小值在相同频率范围内移动了 60 MHz。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/311c/6387245/4f7d16a7b873/sensors-19-00715-g001.jpg

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