Title :
Highly Directive and Broadband Radiation From Photonic Crystals With Partially Disordered Cavities Arrays
Author :
Tsarev, Andrei Andrey ; Shklyaev, Alexander A.
Author_Institution :
Lab. of Opt. Mater. & Struct., A.V. Rzhanov Inst. of Semicond. Phys., Novosibirsk, Russia
Abstract :
Two-dimension hexagonal photonic crystals (PhCs) with ordered and partially disordered cavities arrays, such as missing holes, were studied using numerical modeling by the 3-D finite-difference time domain method. First, we examined an obvious case of PhCs with the ordered array of 19 coupled cavities which produce a highly directive and 19 times enhanced emission, while the single peak radiation mode and the peak wavelength width remain about the same as those for the PhC with a single cavity. The modified PhC with a partially disordered cavities array is found to emit a three times broader peak than that of the single-cavity PhC, saving the integral peak intensity and highly directive emission. These are the results of the constructive cavities-coupling radiation interference. The found peak-broadening effect may lead to efficient broadband Si-based light emitters fabrication. This is interesting for numerous sensing applications, including fiber Bragg grating interrogation.
Keywords :
finite difference time-domain analysis; light interference; photonic crystals; 3D finite-difference time domain method; PhC; broadband Si-based light emitter fabrication; broadband radiation; constructive cavity-coupling radiation interference; directive emission; directive radiation; fiber Bragg grating interrogation; numerical modeling; ordered cavity arrays; partially disordered cavity arrays; radiation mode; sensing applications; two-dimension hexagonal photonic crystals; wavelength width; Cavity resonators; Finite difference methods; Lattices; Photonic crystals; Physics; Silicon; Time-domain analysis; Light emitting diodes; Nanophotonics; Numerical simulation; Optical resonators; Optoelectronic devices; Photoluminescence; Photonic crystals; Silicon-oninsulator; nanophotonics; numerical simulation; optical resonators; optoelectronic devices; photoluminescence; photonic crystals (PhCs); silicon-on-insulator (SOI);
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2014.2369427