4.6 Article

Ultra-large nonlinear parameter in graphene-silicon waveguide structures

期刊

OPTICS EXPRESS
卷 22, 期 19, 页码 22820-22830

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OPTICAL SOC AMER
DOI: 10.1364/OE.22.022820

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  1. MOE ACRF Tier 2 research grant
  2. SUTD-MIT International Design Center
  3. SUTD-ZJU collaborative research grant

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Mono-layer graphene integrated with optical waveguides is studied for the purpose of maximizing E-field interaction with the graphene layer, for the generation of ultra-large nonlinear parameters. It is shown that the common approach used to minimize the waveguide effective modal area does not accurately predict the configuration with the maximum nonlinear parameter. Both photonic and plasmonic waveguide configurations and graphene integration techniques realizable with today's fabrication tools are studied. Importantly, nonlinear parameters exceeding 10(4) W-1/m, two orders of magnitude larger than that in silicon on insulator waveguides without graphene, are obtained for the quasi-TE mode in silicon waveguides incorporating mono-layer graphene in the evanescent part of the optical field. Dielectric loaded surface plasmon polariton waveguides incorporating mono-layer graphene are observed to generate nonlinear parameters as large as 10(5) W-1/m, three orders of magnitude larger than that in silicon on insulator waveguides without graphene. The ultra-large nonlinear parameters make such waveguides promising platforms for nonlinear integrated optics at ultra-low powers, and for previously unobserved nonlinear optical effects to be studied in a waveguide platform. (C)2014 Optical Society of America

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