Title :
Optimal design of grating-assisted directional couplers
Author :
Passaro, Vittorio M N
Author_Institution :
Dipt. di Elettrotecnica ed Elettronica, Politecnico di Bari, Italy
fDate :
7/1/2000 12:00:00 AM
Abstract :
In this paper, a rigorous leaky mode propagation method has been used to investigate the influence of the grating period and grating index profile on the design of grating-assisted directional couplers (GADC´s). A detailed explanation of resonance condition and radiation loss in terms of electromagnetic field contribution in the grating region as a function of the grating period and profile is given. Optimal design parameters hare been found for well-defined structures in order to achieve either minimum coupling length or maximum coupling efficiency. A very fast method to extract the resonance condition in any grating-assisted structure by using a sinusoidal profile is proposed. Numerical results are presented for both moderately and strongly asymmetric structures in terms of normalized propagation constant, mode radiation loss, coupling length and coupling efficiency. Comparisons with grating period and coupling length predictions obtained by other methods are also shown. The rectangular profile with optimized duty cycle has been demonstrated to be the best choice in order to minimize the GADC coupling length.
Keywords :
diffraction gratings; optical design techniques; optical directional couplers; optical losses; optical waveguide theory; optimisation; coupling efficiency; coupling length; coupling length predictions; electromagnetic field contribution; grating index profile; grating period; grating profile; grating region; grating-assisted directional coupler design; grating-assisted directional couplers; maximum coupling efficiency; optimal design; optimal design parameters; optimized duty cycle; radiation loss; rectangular profile; resonance condition; rigorous leaky mode propagation method; sinusoidal profile; strongly asymmetric structures; Directional couplers; Electromagnetic waveguides; Gratings; Optical filters; Optical losses; Optical scattering; Optical waveguide theory; Optical waveguides; Resonance; Wavelength division multiplexing;
Journal_Title :
Lightwave Technology, Journal of