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    Microscopic modeling of transverse non-equilibrium dynamics in mode-locked VECSELs

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    Author
    McLaren, S.
    Kilen, I
    Moloney, J., V
    Affiliation
    Univ Arizona, Program Appl Math
    Univ Arizona, Arizona Ctr Math Sci
    Univ Arizona, Wyant Coll Opt Sci
    Univ Arizona, Dept Math
    Issue Date
    2020
    Keywords
    VECSEL
    semiconductor laser
    mode-locking
    simulation
    semiconductor Bloch equations
    transverse
    instabilities
    
    Metadata
    Show full item record
    Publisher
    SPIE-INT SOC OPTICAL ENGINEERING
    Citation
    S. McLaren, I. Kilen, J. V. Moloney, "Microscopic modeling of transverse non-equilibrium dynamics in mode-locked VECSELs," Proc. SPIE 11263, Vertical External Cavity Surface Emitting Lasers (VECSELs) X, 1126305 (2 March 2020); https://doi.org/10.1117/12.2546310
    Journal
    VERTICAL EXTERNAL CAVITY SURFACE EMITTING LASERS (VECSELS) X
    Rights
    © 2020 SPIE.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Mode-locked vertical external-cavity surface emitting lasers are promising compact sources for high-power, ultrafast pulses with excellent beam quality and the flexibility offered by an external cavity. Classical models of these lasers use either phenomenological approaches, which rely heavily on experimentally observed macroscopic parameters, or are based on quasi-equilibrium conditions. Although these models enjoy widespread success, they cannot capture the underlying charge carrier dynamics, shown to be critical components of pulse formation and propagation. The Maxwell Semiconductor Bloch Equations capture these dynamics through a coupling of pulse propagation to the field induced polarization within an active semiconductor quantum well. We utilize a transverse implementation of this model to microscopically investigate fundamental Gaussian pulse formation as well as destabilizing effects of pump parameters. These behaviors are directly linked to the underlying charge carrier dynamics. Excess carriers around the pulse's spatial or spectral centers destabilizes the pulse and are shown to lead to the formation of higher order transverse modes and secondary pulses within the cavity.
    Note
    Immediate access
    ISSN
    0277-786X
    EISSN
    1996-756X
    DOI
    10.1117/12.2546310
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.1117/12.2546310
    Scopus Count
    Collections
    UA Faculty Publications

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