Title :
Design and spectral characteristics of multireflector etalons
Author :
Yim, Seongmin ; Taylor, Henry F.
Author_Institution :
Inf. & Technol. Consulting Center, Samsung SDS Co. Ltd., Seoul, South Korea
fDate :
3/1/2005 12:00:00 AM
Abstract :
A numerical technique for analyzing multireflector optical resonators with an arbitrarily large number of mirrors is applied to the design of ripple-free, flat-top bandpass filters. The algorithm determines unique values for the mirror reflectances Rj, j=1,...,N, subject to a constraint on a contradirectional coupling strength parameter Z defined as Z=σj=1Nζj with ζj=tanh-1(√Rj). The method is applied to the design of resonators with N as high as 12. Transmittance and dispersion spectra are presented for two cases that represent relatively weak and relatively strong contradirectional coupling. These spectra illustrate that, for a fixed -20-dB width of the transmittance spectrum, the -3-dB spectral widths increase monotonically with N, while the central portion of the group refractive-index spectrum becomes flatter and wider as N increases. These designs are compared with those obtained using a Chebyshev formula to determine the mirror reflectances. Application of these multireflector resonators as bandpass filters, slow-wave electrooptic modulators, and nonlinear optical devices are discussed.
Keywords :
Chebyshev approximation; band-pass filters; electro-optical modulation; light interferometers; mirrors; nonlinear optics; optical couplers; optical design techniques; optical filters; optical resonators; reflectivity; refractive index; Chebyshev formula; contradirectional coupling strength; dispersion spectra; flat-top bandpass filter design; mirrors; multireflector etalons; optical resonators; reflectance; refractive-index spectrum; slow-wave electrooptic modulators; transmittance spectra; Band pass filters; Fiber nonlinear optics; Frequency conversion; Mirrors; Nonlinear optical devices; Optical filters; Optical modulation; Optical refraction; Optical resonators; Optical waveguides; Etalon; fiber optics; optical resonator; optical waveguide filter;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2004.840336