Study on propagation properties of one-soliton in a multimode fiber with higher-order effects

Results in Physics - Tập 41 - Trang 105898 - 2022
Qin Zhou1, Yunzhou Sun1,2, Houria Triki3, Yu Zhong1, Zhongliang Zeng1, Mohammad Mirzazadeh4
1Research Center of Nonlinear Science, School of Mathematical and Physical Sciences, Wuhan Textile University, Wuhan, 430200, China
2Artificial Intelligence School, Wuchang University of Technology, Wuhan, 430223, China
3Radiation Physics Laboratory, Department of Physics, Faculty of Sciences, Badji Mokhtar University, P.O. Box 12, 23000 Annaba, Algeria
4Department of Engineering Sciences, Faculty of Technology and Engineering, East of Guilan, University of Guilan, Rudsar-Vajargah, Iran

Tài liệu tham khảo

Yang, 2010, Snakelike nonautonomous solitons in a graded-index grating waveguide, Phys Rev A, 81, 10.1103/PhysRevA.81.043826 Mertens, 2010, Nonlinear Schrö dinger equation with spatiotemporal perturbations, Phys Rev E, 81, 10.1103/PhysRevE.81.016608 Ndebele, 2020, Modulational instability in nonlinear doped optical fiber induced by the cubic–quintic–septic complex Ginzburg–Landau equation with higher-order dispersions, J Opt Soc Amer B, 37, A214, 10.1364/JOSAB.397313 Njifon, 2020, Few-cycle optical pulses in negative index materials with dispersive permittivity and permeability, J Opt Soc Amer B, 37, A331, 10.1364/JOSAB.398710 Megne, 2020, Modulation instability in nonlinear metamaterials modeled by a cubic-quintic complex Ginzburg–Landau equation beyond the slowly varying envelope approximation, Phys Rev E, 102, 10.1103/PhysRevE.102.042207 Ndebele, 2021, Higher-order dispersion and nonlinear effects of optical fibers under septic self-steepening and self-frequency shift, Phys Rev E, 104, 10.1103/PhysRevE.104.044208 Djazet, 2021, Dynamics of moving cavity solitons in two-level laser system from symmetric gaussian input: vectorial cubic-quintic complex Ginzburg–Landau equation, Appl Phys B, 127, 1, 10.1007/s00340-021-07700-y Zanga, 2022, Generation of dissipative solitons in a doped optical fiber modeled by the higher-order dispersive cubic–quintic–septic complex Ginzburg–Landau equation, Phys Rev A, 105, 10.1103/PhysRevA.105.023502 Otsobo, 2022, Stability of nonparaxial gap-soliton bullets in waveguide gratings, Chaos Solitons Fractals, 158, 10.1016/j.chaos.2022.112034 Hasegawa, 1995 Agrawal, 1995 Awan, 2021, Multiple soliton solutions with chiral nonlinear Schrödinger’s equation in (2+1)-dimensions, Eur J Mech B, 85, 68, 10.1016/j.euromechflu.2020.07.014 Tahir, 2020, Optical dark and singular solitons to the Biswas-Arshed equation in birefringent fibers without four-wave mixing, Optik, 207, 10.1016/j.ijleo.2020.164421 Tahir, 2019, Optical solitons to Kundu-Eckhaus equation in birefringent fibers without four-wave mixing, Optik, 199, 10.1016/j.ijleo.2019.163297 Awan, 2020, Singular and bright-singular combo optical solitons in birefringent fibers to the Biswas-Arshed equation, Optik, 210, 10.1016/j.ijleo.2020.164489 Tahir, 2020, Optical travelling wave solutions for the Biswas-Arshed model in Kerr and non-Kerr law media, Pramana, 94, 1, 10.1007/s12043-019-1888-y Tahir, 2019, Analytical solitons with the Biswas-Milovic equation in the presence of spatio-temporal dispersion in non-Kerr law media, Eur Phys J Plus, 134, 1, 10.1140/epjp/i2019-12887-3 Awan, 2019, On traveling wave solutions: The Wu-Zhang system describing dispersive long waves, Modern Phys Lett B, 33, 10.1142/S0217984919500593 Rehman, 2022, A non-linear study of optical solitons for Kaup-Newell equation without four-wave mixing, J King Saud Univ Sci, 34, 10.1016/j.jksus.2022.102056 ur Rehman, 2022, Solitary wave solutions for a strain wave equation in a microstructured solid, Results Phys, 39 Rehman, 2022, Extended hyperbolic function method for the (2+1)-dimensional nonlinear soliton equation, Results Phys, 40, 10.1016/j.rinp.2022.105802 Nair, 2020, Impact of fourth order dispersion on modulational instabilities in asymmetrical three-core optical fiber, Optik, 215, 10.1016/j.ijleo.2020.164758 Rajan, 2020, Transition from bird to butterfly shaped nonautonomous soliton and soliton switching in erbium doped resonant fiber, Phys Scr, 95, 10.1088/1402-4896/abb2df Vijayalekshmi, 2015, Hidden possibilities in soliton switching through tunneling in erbium doped birefringence fiber with higher order effects, J Modern Opt, 62, 278, 10.1080/09500340.2014.975847 Mahalingam, 2009, Propagation of dispersion–nonlinearity-managed solitons in an inhomogeneous erbium-doped fiber system, J Phys A, 42, 10.1088/1751-8113/42/16/165101 Rajan, 2013, Dispersion management and cascade compression of femtosecond nonautonomous soliton in birefringent fiber, Eur Phys J D, 67, 1 Mahalingam, 2015, Influence of generalized external potentials on nonlinear tunneling of nonautonomous solitons: soliton management, Opt Fib Tech, 25, 44, 10.1016/j.yofte.2015.07.013 Prakash, 2016, Controllable pulse width of bright similaritons in a tapered graded index diffraction decreasing waveguide, Chaos, 26, 10.1063/1.4944939 Rajan, 2015, Nonautonomous solitons in modified inhomogeneous Hirota equation: soliton control and soliton interaction, Nonlinear Dynam, 79, 2469, 10.1007/s11071-014-1826-y Rajan, 2016, Dynamics of optical soliton in a tapered erbium-doped fiber under periodic distributed amplification system, Nonlinear Dynam, 85, 599, 10.1007/s11071-016-2709-1 Rajan, 2016, Unexpected behavior on nonlinear tunneling of chirped ultrashort soliton pulse in non-Kerr media with Raman effect, Z Naturf a, 71, 751, 10.1515/zna-2016-0187 Zhao, 2016, W-shaped solitons generated from a weak modulation in the Sasa-Satsuma equation, Phys Rev E, 93, 10.1103/PhysRevE.93.032215 Palacios, 2000, Black optical solitons for media with parabolic nonlinearity law in the presence of fourth order dispersion, Opt Commun, 178, 457, 10.1016/S0030-4018(00)00666-0 Palacios, 2003, Optical solitons in highly dispersive media with a dual-power nonlinearity law, J Opt A: Pure Appl Opt, 5, 180, 10.1088/1464-4258/5/3/306 Akhmediev, 1997 Zhou, 2022, Perturbation of chirped localized waves in a dual-power law nonlinear medium, Chaos Solitons Fractals, 160, 10.1016/j.chaos.2022.112198 Zhou, 2022, Generation and transformation of dark solitons, anti-dark solitons and dark double-hump solitons, Nonlinear Dynam, 10.1007/s11071-022-07673-3 Zhou Q, Luan Z, Zeng Z, Zhong Y. Effective amplification of optical solitons in high power transmission systems. Nonlinear Dynam. http://dx.doi.org/10.1007/s11071-022-07590-5. Zhou, 2022, Nonlinear control of logic structure of all-optical logic devices using soliton interactions, Nonlinear Dynam, 107, 1215, 10.1007/s11071-021-07027-5 Zhou, 2022, Chirped bright and kink solitons in nonlinear optical fibers with weak nonlocality and cubic-quintic-septic nonlinearity, Chin Phys Lett, 39, 10.1088/0256-307X/39/4/044202 Zhou, 2022, Influence of parameters of optical fibers on optical soliton interactions, Chin Phys Lett, 39, 10.1088/0256-307X/39/1/010501 Jiang, 2012, Soliton interactions and complexes for coupled nonlinear Schrödinger equations, Phys Rev E, 85, 10.1103/PhysRevE.85.036605 Porsezian, 2007, Cnoidal and solitary wave solutions of the coupled higher order nonlinear Schrödinger equation in nonlinear optics, Chaos Solitons Fractals, 31, 188, 10.1016/j.chaos.2005.09.044 Kaminow, 1981, Polarization in optical fibers, IEEE J Quantum Electron, 17, 15, 10.1109/JQE.1981.1070626 Chakravarty, 1995, Multisoliton interactions and wavelength-division multiplexing, Opt Lett, 20, 136, 10.1364/OL.20.000136 Yeh, 1998, Enhanced pulse compression in a nonlinear fiber by a wavelength division multiplexed optical pulse, Phys Rev E, 57, 2398, 10.1103/PhysRevE.57.2398 Stegeman, 1999, Optical spatial solitons and their interactions: Universality and diversity, Science, 286, 1518, 10.1126/science.286.5444.1518 Gomez-Alcala, 2006, Vector soliton switching by using the cascade connection of saturable absorbers, Opt Lett, 31, 3137, 10.1364/OL.31.003137 Anastassiou, 2001, Information transfer via cascaded collisions of vector solitons, Opt Lett, 26, 1498, 10.1364/OL.26.001498 Wang, 2022, Soliton fusion and fission for the high-order coupled nonlinear Schrödinger system in fiber lasers, Chin Phys B, 31, 10.1088/1674-1056/ac2d22 Rogers, 2012, Localized pulses for the quintic derivative nonlinear Schrödinger equation on a continuous-wave background, Phys Rev E, 86, 10.1103/PhysRevE.86.037601 Kivshar, 2003