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Nonlinear short-pulse propagation in a free-electron laser

Authors
Hahn, Sang JuneLee, Jae Koo
Issue Date
Sep-1993
Publisher
AMERICAN PHYSICAL SOC
Citation
PHYSICAL REVIEW E, v.48, no.3, pp 2162 - 2171
Pages
10
Journal Title
PHYSICAL REVIEW E
Volume
48
Number
3
Start Page
2162
End Page
2171
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/56968
DOI
10.1103/PhysRevE.48.2162
ISSN
1063-651X
Abstract
With one-dimensional time-dependent Maxwell-Lorentz equations, we have numerically investigated the nonlinear short-pulse propagation in a free-electron laser (FEL). Considering the pulsed electron beam and the cavity detuning, we describe a spiking behavior and the dissipative dynamics in a FEL oscillator. We show that the spiking behavior is well understood by superradiant pulse propagation and its dynamical regimes are closely related to a bifurcation and the chaotic transition in the nonlinear dissipative dynamics. The scaled synchrotron slippage distance (L(syn)/L(s)), where L(s) is the slippage length and L(syn) is the slippage distance in a synchrotron period, plays an important role in determining the dynamical regimes. Using dimensionless branching parameters, which are the cavity detuning parameter D, the slippage parameter S, and the superradiant parameter K, we describe the bifurcation and the chaotic transitions via a period-doubling cascade, an intermittency, and a quasiperiodicity. The real-time signal, the phase-space plot, and the corresponding power spectrum are used to confirm our results.
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Hahn, Sang June
자연과학대학 (물리학과)
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