Rosa Álvaro, Verstuyft Steven, Brimont Antoine, Thourhout Dries Van, Sanchis Pablo
Nanophotonics Technology Center, Universitat Politècnica de València, Camino de Vera s/n, Valencia, 46022, Spain.
Photonics Research Group, Department of Information Technology (INTEC), Ghent University-imec, Technologiepark-Zwijnaarde 15, Gent, B-9052, Belgium.
Sci Rep. 2018 Apr 4;8(1):5672. doi: 10.1038/s41598-018-24030-w.
Microwave index engineering has been investigated in order to properly design slow-wave coplanar waveguides suitable for a wide range of applications in microwave, photonics, plasmonics and metamaterials. The introduction and optimization of novel capacitive and inductive elements is proposed as a design approach to increase the microwave index while keeping the impedance close to 50 Ω to ensure the compatibility with external electronic devices. The contribution of inductive and capacitive elements and their influence on the performance of the slow-wave coplanar waveguide has been systematically analyzed. As a result, a microwave index as high as 11.6 has been experimentally demonstrated in a frequency range up to 40 GHz which is, to the best of our knowledge, the largest microwave index obtained so far in coplanar waveguides.
为了合理设计适用于微波、光子学、等离子体和超材料等广泛应用的慢波共面波导,人们对微波指数工程进行了研究。提出引入和优化新型电容性和电感性元件作为一种设计方法,以提高微波指数,同时保持阻抗接近50Ω,以确保与外部电子设备兼容。系统地分析了电感和电容元件的作用及其对慢波共面波导性能的影响。结果,在高达40GHz的频率范围内通过实验证明了高达11.6的微波指数,据我们所知,这是迄今为止在共面波导中获得的最大微波指数。