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  4. Significant Crosstalk Reduction in High-Density Hollow Dielectric Waveguides by Photonic Crystal Fence
 
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Significant Crosstalk Reduction in High-Density Hollow Dielectric Waveguides by Photonic Crystal Fence

Journal
IEEE Transactions on Microwave Theory and Techniques
Journal Volume
69
Journal Issue
2
Pages
1316-1326
Date Issued
2021
Author(s)
Liu C.-Y
DIng H.-E
Wu S.-H
TZONG-LIN WU  
DOI
10.1109/TMTT.2020.3044617
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85099099868&doi=10.1109%2fTMTT.2020.3044617&partnerID=40&md5=170d89906d5b84ad93eab67f78f69c35
https://scholars.lib.ntu.edu.tw/handle/123456789/581186
Abstract
Hollow dielectric waveguides (HDWs) are renowned for their extremely low-loss transmission among all dielectric -based solutions. Highly-integrated multilane HDWs are expected to be applied for increasing demand on high-throughput communication. Unfortunately, severe crosstalk and loosely confined electromagnetic field have been a critical issue for a long time. In this article, we demonstrate a novel 1-D photonic crystal fence. Photonic particles represent a series of guard lining up beside the waveguides. Over 30-dB crosstalk reduction can be realized for closely placed HDWs. This proposed method, without altering the original structure of HDWs, offers high degrees of freedom for the HDW design. The experimental results show good field confinement in the mm-wave range, but not limit to it. This all-dielectric -based solution implies its opportunity for subterahertz to optical frequency application. Moreover, photonic crystal fence with only 1-D arrangement makes this concept feasible for both tubular HDWs and other planar integrated dielectric -based waveguides on board. This technique takes a key step for highly integrated multilane HDWs in the near future. ? 1963-2012 IEEE.
Subjects
Crosstalk; Degrees of freedom (mechanics); Electromagnetic fields; Fences; Millimeter waves; Photonic crystals; 1-D photonic crystal; Critical issues; Crosstalk reduction; High throughput; Hollow dielectric waveguides; Optical frequency; Original structures; Sub-terahertz; Optical waveguides
Type
journal article

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