Title :
Fabrication technologies for vertically coupled microring resonator with multilevel crossing busline and ultracompact-ring radius
Author :
Kokubun, Yasuo ; Hatakeyama, Yutaka ; Ogata, Masashi ; Suzuki, Shuichi ; Zaize, Nobuhiro
Author_Institution :
Dept. of Electr. & Comput. Eng., Yokohama Nat. Univ., Japan
Abstract :
To eliminate the scattering loss at the crossing points of cross-grid busline waveguides, the multilevel crossing structure of the busline waveguides was introduced into a vertically coupled microring resonator (VCMRR) filter. To achieve this structure, two fabrication technologies were newly developed; one is a method to planarize perfectly the top surface of each buried waveguide, and the other is a method to fabricate microring waveguides with very smooth sidewalls. Using the latter method, an ultracompact VCMRR with a ring radius of 5 μm was realized and a free spectral range of 37 nm was successfully demonstrated. Next, using the former method, single-ring and quadruple series-coupled ring resonators with multilevel crossing busline waveguides were fabricated. A clear filter response was obtained for the single-microring resonator, and a boxlike filter response was obtained for the quadruple series-coupled microring resonator with multilevel crossing busline waveguides.
Keywords :
microcavities; optical couplers; optical fabrication; optical filters; optical losses; optical planar waveguides; 5 mum; boxlike filter response; buried waveguide; clear filter response; cross-grid busline waveguides; fabrication technologies; integrated optics; microring resonator; multilevel crossing busline; quadruple series-coupled resonators; resonator filter; scattering loss elimination; single-ring resonators; top surface planarization; ultracompact VCMRR; ultracompact-ring radius; vertically coupled resonator; Fabrication; Finite difference methods; Integrated optics; Light scattering; Optical filters; Optical resonators; Optical ring resonators; Optical scattering; Optical waveguides; Resonator filters;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2004.841720