Paper
15 November 2010 New configuration of photonic logic gates based on single hexagonal-lattice photonic crystal ring resonator
JunZhen Jiang, Junqin Wang, Xiaofu Xu, Junjun Li, Xiyao Chen, Yishen Qiu, Zexuan Qiang
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Abstract
We report a new configuration of logic gates based on single hexagonal-lattice PCRR composed of cylindrical silicon rods in air. Two types of inner ring including regular hexagonal and circular are numerically discussed by using 2D finite-difference time-domain (FDTD) technique. The impact of surrounding periods and scatterers like size and relative phase at each input port was investigated. The logic '0' and '1' of hexagonal ring can be defined as less than 17% and greater than 85%, respectively, much better than early reported square-lattice results. The simulation results also proved that photonic logic gates based on this new single PCRR can really function as NOT and NOR gates, respectively. These findings make PCRRs potential applications for all-optical logic circuits and ultra-compact high density photonic integration.
© (2010) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
JunZhen Jiang, Junqin Wang, Xiaofu Xu, Junjun Li, Xiyao Chen, Yishen Qiu, and Zexuan Qiang "New configuration of photonic logic gates based on single hexagonal-lattice photonic crystal ring resonator", Proc. SPIE 7847, Optoelectronic Devices and Integration III, 78470T (15 November 2010); https://doi.org/10.1117/12.868377
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KEYWORDS
Logic devices

Logic

Photonic crystals

Finite-difference time-domain method

Resonators

Silicon

Waveguides

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