Title :
Solving Soliton Perturbation Problems by Introducing Rayleigh´s Dissipation Function
Author :
Roy, Samudra ; Bhadra, Shyamal K.
Author_Institution :
Fiber Opt. Lab., Central Glass & Ceramic Res. Inst., Kolkata
fDate :
7/15/2008 12:00:00 AM
Abstract :
We solve soliton perturbation problem in nonlinear optical system by introducing Rayleigh´s dissipation function in the framework of variational approach. The adopted process facilitates variational approach to be applied on dissipative system where the Lagrangian and Hamiltonian are difficult to form. Exploiting the idea, loss and filtering problems are evaluated with convincing results. Considering other perturbing terms like two soliton interactions, intrapulse Raman scattering, self-steepening, and two-photon absorption in extended nonlinear Schrodinger equation, Rayleigh´s dissipation function is configured intuitively so that the generalized Euler-Lagrange equation converges to the related governing equation of the pulse propagation. The process evolves a set of differential equations exploiting the dynamics of different pulse parameters under the influence of perturbations. The obtained analytical results are verified with generalized Kantorovich approach and compared with previous reported results. Numerical simulations based on the split-step beam propagation method are employed to calculate the pulse evolution parameters and the derived results are found to be corroborated well with the analytical predictions.
Keywords :
Raman spectra; Schrodinger equation; differential equations; light propagation; optical solitons; two-photon processes; Rayleigh´s dissipation function; differential equations; dissipative system; extended nonlinear Schrodinger equation; generalized Euler-Lagrange equation; generalized Kantorovich approach; intrapulse Raman scattering; nonlinear optical system; optical soliton; pulse evolution parameters; pulse parameters; pulse propagation; self-steepening; soliton interactions; soliton perturbation problems; split-step beam propagation method; two-photon absorption; variational approach; Absorption; Filtering; Lagrangian functions; Nonlinear equations; Nonlinear optics; Optical filters; Optical losses; Optical scattering; Optical solitons; Raman scattering; Filters and modulators; Rayleigh´s dissipation function; generalized Euler– Lagrange equation; intrapulse Raman scattering; optical soliton; self-steepening; soliton interaction; timing-jitter; two-photon absorption (TPA);
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2008.922305