DocumentCode
1404592
Title
Coupled Resonances in Multiple Silicon Photonic Crystal Cavities in All-Optical Solid-State Analogy to Electromagnetically Induced Transparency
Author
Yang, Xiaodong ; Yu, Mingbin ; Kwong, Dim-Lee ; Wong, Chee Wei
Author_Institution
Opt. Nanostruct. Lab., Columbia Univ., New York, NY, USA
Volume
16
Issue
1
fYear
2010
Firstpage
288
Lastpage
294
Abstract
We present experimental and theoretical studies of coupled resonances in multiple silicon photonic crystal cavities in an all-optical classical analogy to electromagnetically induced transparency. Multiple implementation schemes are demonstrated, such as two (in various configurations), and four cavities. The photonic crystal cavities are embedded in 2-D photonic crystal slabs and designed in the overcoupled regime. Our observations include measured transparency resonance lifetimes more than three times the single-cavity lifetimes, Fano-like lineshapes, and stepwise resonance control through multiple aligned external optical pump beams. All observed schemes are analyzed rigorously through finite-difference time-domain simulations and the coupled-mode formalism. Our experimental and theoretical results are applicable to optical pulse trapping and all-optical dynamical storage of light in the solid state.
Keywords
laser cavity resonators; optical pulse generation; photonic crystals; silicon; transparency; Fano-like lineshapes; all-optical solid-state analogy; coupled resonances; coupled-mode formalism; electromagnetically induced transparency; external optical pump beams; finite-difference time-domain simulations; multiple silicon photonic crystal cavities; optical pulse trapping; resonance lifetimes; single-cavity lifetimes; Electromagnetic coupling; Electromagnetic measurements; Optical beams; Optical control; Optical pumping; Photonic crystals; Resonance; Silicon; Slabs; Solid state circuits; Electromagnetically induced transparency; optical cavities; photonic crystals; slow light;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2009.2032665
Filename
5406289
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