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A Microwave Platform for Reliable and Instant Interconnecting Combined with Microwave-Microfluidic Interdigital Capacitor Chips for Sensing Applications

机译:用于可靠且瞬间互连的微波平台与微波微流体叉指电容芯片相结合,用于传感应用

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摘要

This work presents a novel platform conceived as an interconnect box (ICB) that brings high-frequency signals from microwave instruments to consumable lab-on-a-chip devices. The ICB can be connected to instruments with a standard coaxial connector and to consumable chips by introducing a spring-levered interface with elastomer conductive pins. With the spring-system, microwave-microfluidic chips can be mounted reliably on the setup in a couple of seconds. The high-frequency interface within the ICB is protected from the environment by an enclosure having a single slit for mounting the chip. The stability and repeatability of the contact between the ICB and inserted consumable chips are investigated to prove the reliability of the proposed ICB. Given the rapid interconnecting of chips using the proposed ICB, five different interdigital capacitor (IDC) designs having the same sensing area were investigated for dielectric permittivity extraction of liquids. The designed IDCs, embedded in a polydimethylsiloxane (PDMS) channel, were fabricated with a lift-off gold patterning technology on a quartz substrate. Water−Isopropanol (IPA) mixtures with different volume fractions were flushed through the channel over IDCs and sensed based on the measured reflection coefficients. Dielectric permittivity was extracted using permittivity extraction techniques, and fitted permittivity data shows good agreement with literature from 100 to 25 GHz.
机译:这项工作介绍了一个新颖的平台,作为互连盒(ICB),将来自微波仪的高频信号带到消耗的实验室设备上。通过用弹性体导电销引入弹簧杠杆杠杆界面,ICB可以用标准同轴连接器和可消耗芯片连接到可消耗芯片的仪器。通过弹簧系统,微波微流体芯片可以在几秒钟内可靠地安装在设置中。通过具有用于安装芯片的单个狭缝的机箱来保护ICB内的高频接口免受环境的保护。研究了ICB和插入的消耗芯片之间接触的稳定性和可重复性,以证明所提出的ICB的可靠性。考虑到使用所提出的ICB的芯片快速互连,研究了具有相同传感区域的五个不同的叉指电容器(IDC)设计,用于液体的介电常电介质提取。在石英基板上用剥离金图案化技术制造嵌入聚二甲基硅氧烷(PDMS)通道中的设计的IDCs。通过IDC通过通道冲洗水 - 异丙醇(IPA)与不同体积分数的混合物,并基于测量的反射系数感测。使用介电常数提取技术提取介电常介电常数,拟合介电常数数据显示与100至25 GHz的文献良好的一致。

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