2015Unpublished venueRequires access

Multiple-Cladding-Resonance All-Solid Photonic Bandgap Fibers with Large Mode Area

Guancheng Gu, Fanting Kong, Thomas W. Hawkins, Maxwell Jones, Liang Dong

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Abstract

We demonstrated both theoretically and experimentally robust single-mode operation in all-solid photonic bandgap fibers with record effective mode areas of ~2650μm2 by introducing multiple strongly coupled smaller cores in the cladding.

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What this paper is about

We demonstrated both theoretically and experimentally robust single-mode operation in all-solid photonic bandgap fibers with record effective mode areas of ~2650μm2 by introducing multiple strongly coupled smaller cores in the cladding.

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Available abstract

We demonstrated both theoretically and experimentally robust single-mode operation in all-solid photonic bandgap fibers with record effective mode areas of ~2650μm2 by introducing multiple strongly coupled smaller cores in the cladding.

Key concepts: Cladding (metalworking), Photonic bandgap, Materials science, Photonic crystal, Optoelectronics, Mode (computer interface), Photonics, Band gap

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