Fully reconfigurable MEMS-based second-order coupled-resonator optical waveguide (CROW) with ultra-low tuning energy

Author:

Lim Min G.ORCID,Park Young J.,Choi Dong J.,Kim Dong U.,Hong Myung S.ORCID,Her Man J.,Takabayashi Alain Y.1,Jeong Youngjae2,Park Jongwoo2ORCID,Han Seungjun2ORCID,Quack Niels3ORCID,Bae Youngseok4,Yu Kyoungsik2,Han Sangyoon

Affiliation:

1. École Polytechnique Fédérale de Lausanne

2. Korea Advanced Institute of Science and Technology

3. The University of Sydney

4. Agency for Defense Development

Abstract

Integrated microring resonators are well suited for wavelength-filtering applications in optical signal processing, and cascaded microring resonators allow flexible filter design in coupled-resonator optical waveguide (CROW) configurations. However, the implementation of high-order cascaded microring resonators with high extinction ratios (ERs) remains challenging owing to stringent fabrication requirements and the need for precise resonator tunability. We present a fully integrated on-chip second-order CROW filter using silicon photonic microelectromechanical systems (MEMS) to adjust tunable directional couplers and a phase shifter using nanoscale mechanical out-of-plane waveguide displacement. The filter can be fully reconfigured with regard to both the ER and center wavelength. We experimentally demonstrated an ER exceeding 25 dB and continuous wavelength tuning across the full free spectral range of 0.123 nm for single microring resonator, and showed reconfigurability in second-order CROW by tuning the ER and resonant wavelength. The tuning energy for an individual silicon photonic MEMS phase shifter or tunable coupler is less than 22 pJ with sub-microwatt static power consumption, which is far better than conventional integrated phase shifters based on other physical modulation mechanisms.

Funder

Agency for Defense Development

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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