Optimizing single mode robustness of the distributed modal filtering rod fiber amplifier
Author(s) -
Mette Jørgensen,
Sidsel R. Petersen,
Marko Laurila,
Jesper Lægsgaard,
Thomas Tanggaard Alkeskjold
Publication year - 2012
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.20.007263
Subject(s) - materials science , optics , photonic crystal fiber , cladding (metalworking) , amplifier , single mode optical fiber , bandwidth (computing) , optoelectronics , plastic clad silica fiber , plastic optical fiber , wavelength , optical fiber , multi mode optical fiber , computer science , telecommunications , physics , cmos , metallurgy
High-power fiber amplifiers for pulsed applications require large mode area (LMA) fibers having high pump absorption and near diffraction limited output. Photonic crystal fibers allow realization of short LMA fiber amplifiers having high pump absorption through a pump cladding that is decoupled from the outer fiber diameter. However, achieving ultra low NA for single mode (SM) guidance is challenging, thus different design strategies must be applied. The distributed modal filtering (DMF) design enables SM guidance in ultra low NA fibers with very large cores, where large preform tolerances can be compensated during the fiber draw. Design optimization of the SM bandwidth of the DMF rod fiber is presented. Analysis of band gap properties results in a fourfold increase of the SM bandwidth compared to previous results, achieved by utilizing the first band of cladding modes, which can cover a large fraction of the Yb emission band including wavelengths of 1030 nm and 1064 nm. Design parameters tolerating refractive index fabrication uncertainties of ± 10⁻⁴ are targeted to yield stable SM bandwidths.
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