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Nonlinear beam self-imaging and self-focusing dynamics in a GRIN multimode optical fiber: theory and experiments

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arxiv 2005.07280 v1 pith:URUDU6QT submitted 2020-05-14 physics.optics nlin.PS

classification physics.opticsnlin.PS
keywords self-imagingbeamfibermultimodegraded-indexnonlinearopticalevolution
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Beam self-imaging in nonlinear graded-index multimode optical fibers is of interest for many applications, such as implementing a fast saturable absorber mechanism in fiber lasers via multimode interference. We obtain an exact solution for the nonlinear evolution of first and second order moments of a laser beam carried by a graded-index multimode fiber, predicting that the spatial self-imaging period does not vary with power. Whereas the amplitude of the oscillation of the beam width is power-dependent. We have experimentally studied the longitudinal evolution of beam self-imaging by means of femtosecond laser pulse propagation in both the anomalous and the normal dispersion regime of a standard telecom graded-index multimode optical fiber. Light scattering out of the fiber core via visible fluorescence emission and harmonic wave generation permits us to directly confirm that the self-imaging period is invariant with power. Spatial shift and splitting of the self-imaging process under the action of self-focusing are also emphasized.

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  1. Wave turbulence, thermalization and multimode locking in optical fibers

    physics.optics 2025-05 conditional novelty 3.0 of 10

    Random index fluctuations speed up the thermalization and condensation of light in multimode fibers, enabling beam self-cleaning, but modal phase-locking shows the effect is not purely statistical.

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