Stabilizing optical solitons by frequency-dependent linear gain-loss and the collisional Raman frequency shift
Avner Peleg, Debananda Chakraborty

TL;DR
This paper demonstrates that frequency-dependent linear gain-loss combined with the collisional Raman frequency shift can stabilize optical solitons in nonlinear waveguides, overcoming radiative instabilities caused by weak linear gain and other physical effects.
Contribution
It introduces a novel stabilization method for optical solitons using frequency-dependent gain-loss and the Raman shift, showing improved stability over previous approaches.
Findings
Frequency-dependent gain-loss suppresses radiation emission effectively.
Collisional Raman shift causes spectral separation aiding stabilization.
Stability achieved despite stronger radiative instabilities in certain setups.
Abstract
We study transmission stabilization of optical solitons against emission of radiation in nonlinear optical waveguides in the presence of weak linear gain-loss, cubic loss, and the collisional Raman frequency shift. We first show how the collisional Raman frequency shift perturbation arises in three different physical setups. We then show by numerical simulations with a perturbed nonlinear Schr\"odinger (NLS) model that transmission in waveguides with weak frequency-independent linear gain is unstable. The radiative instability is stronger than the radiative instabilities that were observed in earlier studies for soliton transmission in the presence of weak linear gain, cubic loss, and various frequency-shifting physical mechanisms. In particular, the Fourier spectrum of the radiation is significantly more spiky and broadband than the radiation's Fourier spectra in earlier studies.…
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Taxonomy
TopicsAdvanced Fiber Laser Technologies · Optical Network Technologies · Quantum optics and atomic interactions
