Broadband Single-Mode Hollow Substrate Integrated Waveguide with Photonic Crystal Sidewalls for Multilayer System-in-Package Applications

B. Hong, Yanbing Qiu, Lei Sun, Guo Ping Wang, N. Chudpooti, J. Cunningham, I. Robertson, N. Somjit
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Abstract

We numerically and experimentally demonstrate a broadband single-mode hollow substrate integrated waveguide using one-dimensional photonic crystal as sidewalls in place of metallic via holes. By avoiding the vertical metallic walls, the waveguide can be easily fabricated as a photonic crystal structure on a single planar substrate sandwiched between two parallel metal plates. Such a hybrid flat waveguide can tightly confine the millimeter and terahertz waves in the low-loss air core. With the aid of the photonic crystal sidewalls, high-order competing modes in the waveguide are substantially suppressed based on the so-called modal-filtering effect, allowing the waveguide to be operated in a single-HE01-mode pattern over an octave bandwidth. Benefiting from the less use of metallic walls, the propagation loss of the proposed hybrid waveguide can be less than that of the classic hollow metallic rectangular waveguide at millimeter-wave and terahertz frequencies according to our numerical simulation. A proof-of-concept experimental demonstration operating between 20 to 45 GHz is presented verifying the properties and the advantages of the proposed waveguide. This works offers a promising candidate for an octave-bandwidth single-mode transmission line for millimeter-wave and THz multilayer system-in-package applications.
带光子晶体侧壁的宽带单模空心衬底集成波导用于多层系统级封装应用
我们用数值和实验证明了一种用一维光子晶体代替金属通孔作为侧壁的宽带单模空心衬底集成波导。通过避免垂直的金属壁,波导可以很容易地制成光子晶体结构,夹在两个平行金属板之间的单一平面衬底上。这种混合平面波导可以将毫米波和太赫兹波紧密地限制在低损耗的空芯中。在光子晶体侧壁的帮助下,基于所谓的模态滤波效应,波导中的高阶竞争模式被有效抑制,允许波导在一个倍频宽内以单he01模式模式工作。在毫米波和太赫兹频率下,由于较少使用金属壁,混合波导的传输损耗比传统的空心金属矩形波导要小。在20至45 GHz之间进行了概念验证实验演示,验证了所提出波导的特性和优点。这项工作为毫米波和太赫兹多层系统级封装应用提供了一种有前途的倍频带宽单模传输线。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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