Title :
Circuit-based method for synthesizing serially coupled microring filters
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Alberta, Edmonton, Alta., Canada
fDate :
7/1/2006 12:00:00 AM
Abstract :
A method for synthesizing bandpass microring filters constructed of N serially coupled microring resonators is presented. The approach is based on the reduction of a chain of N serially coupled microrings to an equivalent prototype baseband LC ladder network. Standard analog-filter-synthesis techniques can then be applied to realize a desired filter transfer function. The proposed method is valid in the narrowband approximation and can be used to synthesize both amplitude and phase filters with the coupled resonators in either the add-drop or allpass configuration. The robustness of the proposed circuit-based method will be demonstrated by two examples: The first is the design of a transitional Chebyshev-Bessel filter, illustrating the useful technique of manipulating filter poles to achieve desired amplitude and phase responses; the second example is the synthesis of an Nth-order maximally flat delay allpass filter. The proposed method can also be applied to other types of serially coupled resonators such as Fabry-Perot cavities and photonic crystal nanocavities to explore novel amplitude and phase filter applications.
Keywords :
Chebyshev filters; band-pass filters; ladder filters; optical couplers; optical design techniques; optical fabrication; optical filters; optical resonators; optical transfer function; Chebyshev-Bessel filter; Fabry-Perot cavities; LC ladder network; add-drop filter; allpass filter; analog-filter-synthesis; coupled resonators; filter transfer function; photonic crystal nanocavities; serially coupled microring filters; Band pass filters; Baseband; Circuit synthesis; Coupling circuits; Narrowband; Network synthesis; Prototypes; Resonator filters; Robustness; Transfer functions; Allpass filters; filter synthesis; high-order filters; microring resonators; optical filters;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2006.875951