• DocumentCode
    1466253
  • Title

    Nonparaxial eigenmodes of stable resonators

  • Author

    Laabs, Holger ; Friberg, Ari T.

  • Author_Institution
    Opt. Inst., Tech. Univ. Berlin, Germany
  • Volume
    35
  • Issue
    2
  • fYear
    1999
  • fDate
    2/1/1999 12:00:00 AM
  • Firstpage
    198
  • Lastpage
    207
  • Abstract
    A method to determine the nonparaxial eigenmodes of stable resonators is presented. The method is based on the perturbation theory of Lax et al. For calculating nonparaxial components of the electric field. A matrix formalism which uses a mode expansion into paraxial Hermite-Gaussian modes is applied to describe the nonparaxial propagation and the phase shift at a parabolic and a spherical mirror. Expressions for these matrices are derived analytically. Multiplying all matrices corresponding to a round trip, a matrix for the resonator is obtained. Eigenmodes of the resonator are numerically found by solving the eigenvalue problem. In the special case of paraxial propagation and parabolic mirror profiles, the standard Hermite-Gaussian modes result analytically. Nonparaxial modes of a given resonator are compared for different mirror profiles. It is found that, in the nonparaxial domain, spherical mirrors do not change the mode profile and the frequencies of the transverse modes, in contrast to parabolic mirrors which aberrate the beam profile and cause frequency shifts
  • Keywords
    aberrations; eigenvalues and eigenfunctions; laser beams; laser cavity resonators; laser mirrors; laser modes; laser theory; matrix algebra; perturbation theory; beam profile aberrations; eigenvalue problem; electric field; laser cavity resonators; laser mode expansion; matrix formalism; mirror profile; nonparaxial components; nonparaxial domain; nonparaxial eigenmodes; nonparaxial propagation; parabolic mirror; parabolic mirror profiles; paraxial Hermite-Gaussian modes; paraxial propagation; perturbation theory; phase shift; spherical mirror; stable resonators; standard Hermite-Gaussian modes; transverse modes; Diffraction; Eigenvalues and eigenfunctions; Frequency; Helium; Laser beams; Laser modes; Mirrors; Optical propagation; Optical resonators; Partial differential equations;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/3.740741
  • Filename
    740741