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Structure of Optical Soliton Solution for Nonliear Resonant Space-Time Schrodinger Equation in Conformable Sense With Full Nonlinearity Term

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Date

2020

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Iop Publishing Ltd

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Green Open Access

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Abstract

Nonclassical quantum mechanics along with dispersive interactions of free particles, long-range boson stars, hydrodynamics, harmonic oscillator, shallow-water waves, and quantum condensates can be modeled via the nonlinear fractional Schrodinger equation. In this paper, various types of optical soliton wave solutions are investigated for perturbed, conformable space-time fractional Schrodinger model competed with a weakly nonlocal term. The fractional derivatives are described by means of conformable space-time fractional sense. Two different types of nonlinearity are discussed based on Kerr and dual power laws for the proposed fractional complex system. The method employed for solving the nonlinear fractional resonant Schrodinger model is the hyperbolic function method utilizing some fractional complex transformations. Several types of exact analytical solutions are obtained, including bright, dark, singular dual-power-type soliton and singular Kerr-type soliton solutions. Moreover, some graphical simulations of those solutions are provided for understanding the physical phenomena.

Description

Al-Smadi, Mohammed/0000-0003-0226-7254; Al-Omari, Shrideh/0000-0001-8955-5552; Alabedalhadi, Mohammed Alabedalhadi/0000-0002-2605-1573

Keywords

Conformable Derivative, Resonant Schrodinger Equation, Complex Fractional Nonlinear Partial Differential Equation

Turkish CoHE Thesis Center URL

Fields of Science

0103 physical sciences, 0101 mathematics, 01 natural sciences

Citation

Alabedalhadi, Mohammed...et al. (2020). "Structure of optical soliton solution for nonliear resonant space-time Schrödinger equation in conformable sense with full nonlinearity term", Physica Scripta, Vol. 95, No. 10.

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Q2

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Q3
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OpenCitations Citation Count
63

Source

Physica Scripta

Volume

95

Issue

10

Start Page

105215

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CrossRef : 70

Scopus : 77

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Mendeley Readers : 5

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77

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Web of Science™ Citations

65

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