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handle: 10261/59794 , 1885/36172
We have numerically calculated the resonance curve and the region of existence of high-energy dissipative solitons in systems governed by the complex cubic-quintic Ginzburg-Landau equation. The calculations are carried out for negative reactive quintic nonlinearity. This choice allows the resonance curve to be continued into the region of positive net dispersion, thus showing that high-energy pulses can also be generated by lasers operating in the anomalous dispersion regime. © 2009 The American Physical Society.
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Quintic nonlinearities, Resonance curves, Cubic-quintic Ginzburg-Landau equations, Dissipative solitons, High energies, High-energy pulse, High energy lasers, Resonance, Solitons, Keywords: Anomalous dispersions
Quintic nonlinearities, Resonance curves, Cubic-quintic Ginzburg-Landau equations, Dissipative solitons, High energies, High-energy pulse, High energy lasers, Resonance, Solitons, Keywords: Anomalous dispersions
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