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Robust Microwave Characterization of Inkjet-Printed Coplanar Waveguides on Flexible Substrates

机译:柔性基板上喷墨印刷共面波导的稳健微波特性

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In this paper, we propose a robust algorithm to automate a microwave characterization process, which simultaneously extracts the electrical parameters (conductivity and dielectric constant) of inkjet-printed components on flexible substrates. Initially, the algorithm extracts the propagation constant of printed coplanar waveguide (CPW) standards by the use of a multiline thru-reflect-line calibration. Then, the proposed algorithm utilizes finite-element modeling to dynamically create an interpolated search space by automatic simulation. The algorithm utilizes a least-square optimization routine to minimize the deviation between the model and the measurements. Our technique significantly reduces the computing resources and is able to extract the material parameters using even a nominal ink profile. Characteristic impedances for CPWs are extracted using series resistor measurements from 10 MHz to 20 GHz. It is shown that the proposed characterization methodology is able to detect small changes in material properties induced by changes in fabrication parameters, such as sintering temperature. Ink conductivities of approximately 2.973 × 107 S/m and a supporting spacer dielectric constant of 1.78 were obtained for the inkjet-printed CPWs on polyethylene terephthalate. In addition, the inkjet-printed CPWs sintered at 170 °C and 220 °C on Kapton had conductivities of 0.187 × 107 and 0.201 × 107 S/m, respectively. We demonstrate the advantages of our technique by measuring the material parameters with the conventional approach.
机译:在本文中,我们提出了一种鲁棒的算法来自动化微波表征过程,该过程同时提取柔性基板上喷墨打印组件的电参数(电导率和介电常数)。最初,该算法通过使用多线直通反射线校准来提取印刷共面波导(CPW)标准的传播常数。然后,提出的算法利用有限元建模通过自动仿真动态创建内插搜索空间。该算法利用最小二乘优化例程来最小化模型和测量之间的偏差。我们的技术极大地减少了计算资源,甚至可以使用标称墨水配置文件提取材料参数。 CPW的特性阻抗是使用10 MHz至20 GHz的串联电阻测量值提取的。结果表明,提出的表征方法能够检测出由于制造参数(例如烧结温度)的变化而引起的材料性能的微小变化。对于在聚对苯二甲酸乙二醇酯上喷墨印刷的CPW,获得的电导率约为2.973×10 7 S / m,支撑间隔物介电常数为1.78。另外,在Kapton上于170°C和220°C烧结的喷墨印刷CPW的电导率分别为0.187×10 7 和0.201×10 7 S / m。 。通过使用常规方法测量材料参数,我们证明了我们技术的优势。

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