You are not logged in to this journal. Log in    |   Subscription Information

Phys. Rev. A 77, 063830 (2008) [8 pages]

Virtual dielectric waveguide mode description of a high-gain free-electron laser. I. Theory

Erik Hemsing,1 Avraham Gover,2 and James Rosenzweig1
1Particle Beam Physics Laboratory, Department of Physics and Astronomy, University of California Los Angeles, Los Angeles, California 90095, USA
2Faculty of Engineering, Department of Physical Electronics, Tel-Aviv University, Ramat-Aviv 69978, Tel-Aviv, Israel

Received 15 February 2008; published 20 June 2008

A set of mode-coupled excitation equations for the slowly growing amplitudes of dielectric waveguide eigenmodes is derived as a description of the electromagnetic signal field of a high-gain free-electron laser (FEL), including the effects of longitudinal space charge. This approach of describing the field basis set has notable advantages for FEL analysis in providing an efficient characterization of eigenmodes, and in allowing a clear connection to free-space propagation of the input (seeding) and output radiation. The formulation describes the entire evolution of the radiation wave through the linear gain regime, prior to the onset of saturation, with arbitrary initial conditions. By virtue of the flexibility in the expansion basis, this technique can be used to find the direct coupling and amplification of a particular mode. A simple transformation converts the derived coupled differential excitation equations into a set of coupled algebraic equations and yields a matrix determinant equation for the FEL eigenmodes. A quadratic index medium is used as a model dielectric waveguide to obtain an expression for the predicted spot size of the dominant system eigenmode, in the approximation that it is a single Gaussian mode.

©2008 The American Physical Society

URL: http://link.aps.org/doi/10.1103/PhysRevA.77.063830
DOI: 10.1103/PhysRevA.77.063830
PACS: 42.25.Dd; 41.60.Cr; 42.60.Jf; 42.50.Tx
  • 42.25.Dd
    Wave propagation in random media (wave optics)
  • 41.60.Cr
    Free-electron lasers
  • 42.60.Jf
    Laser beam characteristics
  • 42.50.Tx
    Optical angular momentum and its quantum aspects
  • YEAR: 2008
KEYWORDS: differential equations, eigenvalues and eigenfunctions, free electron lasers, laser modes, laser theory, optical waveguides, space charge, transforms, waveguide lasers

See Also

Virtual dielectric waveguide mode description of a high-gain free-electron laser. II. Modeling and numerical simulations
Erik Hemsing, Avraham Gover, and James Rosenzweig
Phys. Rev. A 77, 063831 (2008)

REFERENCES (12)

For access to fully linked references, you need to log in. For access to fully linked references, you need to Log in.

CITING ARTICLES

For access to citing articles, you need to log in.
For access to citing articles, you need to Log in.

Related Articles

  1. Virtual dielectric waveguide mode description of a high-gain free-electron laser. II. Modeling and numerical simulations
    Erik Hemsing, Avraham Gover, and James Rosenzweig
    Phys. Rev. A 77, 063831 (2008)


A new free weekly publication from APS

Physics - A new free weekly publication from APS
Please visit physics.aps.org
 
Article Tools