DocumentCode :
1521440
Title :
Photonic-Crystal-Based Polarization Converter for Terahertz Integrated Circuit
Author :
Bayat, Khadijeh ; Rafi, Golamreza Z. ; Shaker, George S A ; Ranjkesh, Nazy ; Chaudhuri, Sujeet K. ; Safavi-Naeini, Saffiedin
Author_Institution :
Electr. & Comput. Eng. Dept., South Dakota State Univ., Brookings, SD, USA
Volume :
58
Issue :
7
fYear :
2010
fDate :
7/1/2010 12:00:00 AM
Firstpage :
1976
Lastpage :
1984
Abstract :
In this paper, the fabrication and characterization of newly developed photonic crystal (PC) polarization-controlling devices on a silicon-on-insulator wafer for integrated terahertz applications are presented. The polarization converter is composed of periodic asymmetric loaded PC slab waveguide. Square- and circular-hole PC slab waveguides were studied using a 3-D finite-difference time-domain method. For a square-hole PC-based polarization rotator, polarization rotation efficiency higher than 90% was achieved within the normalized frequency band of a/ λ = 0.258-0.267 . In circular-hole PC polarization converter, the polarization conversion efficiency dropped to 70% for the aforementioned frequency band. Low polarization conversion efficiency of the circular-hole PC-based device is attributed to scattering loss at the top loaded layers. Thus, the square-hole PC structure is a better candidate for integrated terahertz polarization-controlling devices. Planar terahertz integrated circuit technology was developed to implement the proposed device. Characterization setup was designed using rigorous numerical methods to use the newly introduced Agilent Millimeter-wave PNA-X network analyzer (up to 500 GHz) as a source. Scattering parameter characterizations provide a good measure of polarization extinction ratio. For the devices designed for the central frequency of f = 200 GHz, it was observed that, within the frequency band of 198-208 GHz (α/λ = 0.26-0.272), the ratio of S21 to S11 was higher than 15 dB. The bandwidth is in good agreement with our preliminary design presented before.
Keywords :
MIMIC; S-parameters; circular waveguides; finite difference time-domain analysis; millimetre wave frequency convertors; network analysers; photonic crystals; silicon-on-insulator; 3D finite-difference time-domain method; Agilent millimeter-wave PNA-X network analyzer; circular-hole PC polarization converter; circular-hole PC slab waveguides; efficiency 70 percent; frequency 198 GHz to 208 GHz; integrated terahertz polarization-controlling devices; low polarization conversion efficiency; normalized frequency band; periodic asymmetric loaded PC slab waveguide; photonic crystal polarization-controlling devices; photonic-crystal-based polarization converter; planar terahertz integrated circuit technology; polarization extinction ratio; polarization rotation efficiency; rigorous numerical methods; scattering loss; scattering parameter characterizations; silicon-on-insulator wafer; square-hole PC slab waveguides; square-hole PC-based polarization rotator; top loaded layers; Birefringence; integrated terahertz; photonic crystal (PC); polarization converter; polarization rotator; silicon-on-insulator (SOI); waveguide;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2010.2050371
Filename :
5491261
Link To Document :
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