205
Views
2
CrossRef citations to date
0
Altmetric
Research Article

Nonlinear spin dynamics of a couple of nonlinear Schrödinger's equations by the improved form of an analytical method

, , ORCID Icon, ORCID Icon & ORCID Icon
Pages 1438-1461 | Received 05 Apr 2021, Accepted 30 Aug 2021, Published online: 28 Sep 2021

References

  • B.N.N. Achar, B.T. Yale, and J.W. Hanneken, Time fractional Schrodinger equation revisited, Adv. Math. Phys. 2013 (2013), p. 290216. https://doi.org/https://doi.org/10.1155/2013/290216.
  • M.O. Al-Amr and S. El-Ganaini, New exact traveling wave solutions of the (4 + 1)-dimensional Fokas equation, Comput. Math. Appl. 74 (2017), pp. 1274–1287.
  • I. Ali, S.T.R. Rizvi, S.O. Abbas, and Q. Zhou, Optical solitons for modulated compressional dispersive Alfven and Heisenberg ferromagnetic spin chains, Results Phys. 15 (2019), p. 102714.
  • H.M. Baskonus and H. Bulut, Exponential prototype structures for (2 + 1)-dimensional Boiti–Leon–Pempinelli systems in mathematical physics, Waves Random Complex Media 26 (2016), pp. 201–208.
  • H.M. Baskonus, D.A. Koç, and H. Bulut, New travelling wave prototypes to the nonlinear Zakharov–Kuznetsov equation with power law nonlinearity, Nonlinear Sci. Lett. A 7 (2016), pp. 67–76.
  • A. Biswas, K.R. Khan, M.F. Mahmood, and M. Belic, Bright and dark solitons in optical metamaterials, Optik 125 (2014), pp. 3299–3302.
  • A. Biswas, M. Mirzazadeh, M. Savescu, D. Milovic, K.R. Khan, M.F. Mahmood, and M. Belic, Singular solitons in optical metamaterials by ansatz method and simplest equation approach, J. Modern Opt.61 (2014), pp. 1550–1555.
  • M. Dehghan, J. Manafian, and A. Saadatmandi, Solving nonlinear fractional partial differential equations using the homotopy analysis method, Numer. Methods Partial Differential Equations J. 26 (2010), pp. 448–479.
  • M. Dehghan, J. Manafian, and A. Saadatmandi, Application of the Exp-function method for solving a partial differential equation arising in biology and population genetics, Int. J. Num. Meth. Heat Fluid Flow 21 (2011), pp. 736–753.
  • B. Dong and W. Wang, High-order multiscale discontinuous Galerkin methods for the one-dimensional stationary Schrodinger equation, J. Comput. Appl. Math. 38015 (2020), p. 112962.
  • S.I.A. El-Ganaini, New exact solutions of some nonlinear systems of partial differential equations using the first integral method, Abs. Appl. Anal. 2013 (2013), p. 693076.
  • S.I.A. El-Ganaini, The first integral method to the nonlinear Schrodinger equations in higher dimensions, Abs. Appl. Anal. 2013 (2013), p. 349173. https://doi.org/https://doi.org/10.1155/2013/349173.
  • S. El-Ganaini, Solutions of some class of nonlinear PDEs in mathematical physics, J. Egyptian Math. Soc. 24(2) (2016), pp. 214–219.
  • S.I.A. El-Ganaini, Solitons and other solutions to a new coupled nonlinear Schrodinger type equation, J. Egyptian Math. Soc. 25(1) (2017), pp. 19–27.
  • S. El-Ganaini and M.O. Al-Amr, New abundant wave solutions of the conformable space–time fractional (4 + 1)-dimensional Fokas equation in water waves, Comput. Math. Appl. 78 (2019), pp. 2094–2106.
  • S. El-Ganaini and H. Kumar, A variety of new traveling and localized solitary wave solutions of a nonlinear model describing the nonlinear low-pass electrical transmission lines, Chaos Solitons Frac.140 (2020), p. 110218.
  • S. El-Ganaini and E.M.E. Zayed, Short comment on the extended simplest equation method and the ( G′/G−1/G)-expansion method, Optik 206 (2020), p. 164258.
  • S.I.A. El-Ganaini, M. Mirzazadeh, and A. Biswas, Solitons and other solutions to long-short wave resonance equation, Appl. Comput. Math. 14 (2015), pp. 248–259.
  • Q. Guo and J. Liu, New exact solutions to the nonlinear Schrodinger equation with variable coefficients, Results Phys. 16 (2020), p. 102857.
  • A.A. Hamed, A.H. Abdel Kader, and M.S. Abdel Latif, Solitons, rogue waves and breather solutions for the (2 + 1)-dimensional nonlinear Schrödinger equation with variable coefficients, Optik 216 (2020), p. 164768.
  • Y. He and X. Lin, Numerical analysis and simulations for coupled nonlinear Schrodinger equations based on lattice Boltzmann method, Appl. Math. Lett. 106 (2020), p. 106391.
  • K. Hosseini, M. Matinfar, and M. Mirzazadeh, A (3 + 1)-dimensional resonant nonlinear Schrodinger equation and its Jacobi elliptic and exponential function solutions, Optik 207 (2020), p. 164458.
  • O.A. Ilhan, J. Manafian, and M. Shahriari, Lump wave solutions and the interaction phenomenon for a variable-coefficient Kadomtsev–Petviashvili equation, Comput. Math. Appl. 78(8) (2019), pp. 2429–2448.
  • M. Inc, A.I. Aliyu, A. Yusuf, and D. Baleanu, Optical solitary waves, conservation laws and modulation instability analysis to nonlinear Schrödinger's equations in compressional dispersive Alfvan waves, Optik 155 (2018), pp. 257–266.
  • K. Khan and M.A. Akbar, The exp⁡(−Φ(ξ))-expansion method for finding travelling wave solutions of Vakhnenko–Parkes equation, Int. J. Dyn. System Dif. Eq. 5(1) (2014), pp. 72–83.
  • V.I. Kruglov, Solitary wave and periodic solutions of nonlinear Schrodinger equation including higher order dispersions, Opt. Commun. 4721 (2020), p. 125866.
  • V. Kumar, Modified ( G′/G)-expansion method for finding traveling wave solutions of the coupled Benjamin–Bona–Mahony-KdV equation, J. Ocean Eng. Sci. 4 (2019), pp. 252–255.
  • H. Kumar and S. El-Ganaini, Traveling and localized solitary wave solutions of the nonlinear electrical transmission line model equation, Eur. Phys. J. Plus 135 (2020), p. 749.
  • M.M. Latha and V.C. Christal, An integrable model of (2 + 1)-dimensional Heisenberg ferromagnetic spin chain and soliton excitations, Phys. Scr. 89 (2014), p. 065204.
  • H. Li and Y. Guo, Numerical solution of coupled nonlinear Schrodinger equations on unbounded domains, Appl. Math. Lett. 104 (2020), p. 106286.
  • X. Liu, Z. Luan, Q. Zhou, W. Liu, and A. Biswas, Dark two-soliton solutions for nonlinear Schrodinger equations in inhomogeneous optical fibers, Chinese J. Phys. 61 (2019), pp. 310–315.
  • Y.L. Ma, B.Q. Li, and Y.Y. Fu, A series of the solutions for the Heisenberg ferromagnetic spin chain equation, Math. Meth. Appl. Sci. 41 (2018), pp. 3316–3322.
  • J. Manafian, Optical soliton solutions for Schrödinger type nonlinear evolution equations by the tan(ϕ/2)-expansion method, Optik Int. J. Elec. Opt. 127 (2016), pp. 4222–4245.
  • J. Manafian, Novel solitary wave solutions for the (3 + 1)-dimensional extended Jimbo–Miwa equations, Comput. Math. Appl. 76(5) (2018), pp. 1246–1260.
  • J. Manafian, An optimal Galerkin–homotopy asymptotic method applied to the nonlinear second-order BVPs, Proc. Inst. Math. Mech. 47 (2021), pp. 156–182.
  • J. Manafian and N. Allahverdiyeva, An analytical analysis to solve the fractional differential equations, Adv. Math. Models Appl. 6 (2021), pp. 128–161.
  • J. Manafian and M. Lakestani, Lump-type solutions and interaction phenomenon to the bidirectional Sawada–Kotera equation, Pramana 92 (2019), p. 41.
  • J. Manafian, B. Mohammadi Ivatlo, and M. Abapour, Lump-type solutions and interaction phenomenon to the (2 + 1)-dimensional breaking soliton equation, Appl. Math. Comput. 13 (2019), pp. 13–41.
  • N. Nasreen, A.R. Seadawy, D. Lu, and W.A. Albarakati, Dispersive solitary wave and soliton solutions of the gernalized third order nonlinear Schrodinger dynamical equation by modified analytical method, Results Phys. 15 (2019), p. 102641.
  • J. Rana and S. Liao, On time independent Schrodinger equations in quantum mechanics by the homotopy analysis method, Theo. Appl. Mech. Let. 9 (2019), pp. 376–381.
  • S.M. Rayhanul Islam, K. Khan, and M.A. Akbar, Exact solutions of unsteady Korteweg–de Vries and time regularized long wave equations, Springer Plus 4 (2015), p. 124.
  • A. Sadighi and D.D. Ganji, Analytic treatment of linear and nonlinear Schrodinger equations: A study with homotopy-perturbation and Adomian decomposition methods, Phys. Let. A 372(421) (2008), pp. 465–469.
  • A.R. Seadawy and J. Manafian, New soliton solution to the longitudinal wave equation in a magneto-electro-elastic circular rod, Results Phys. 8 (2018), pp. 1158–1167.
  • T.A. Sulaiman, R.I. Nuruddeen, E. Zerrad, and B.B. Mikail, Dark and singular solitons to the two nonlinear Schrödinger's equations, Optik 186 (2019), pp. 423–430.
  • E.M.E. Zayed and M.A.M. Abdelaziz, Travelling wave solutions for the Burgers equation and the Korteweg–de Vries equation with variable coefficients using the generalized ( G′/G)-expansion method, Z. Naturforschung A 65a (2010), pp. 1065–1070.
  • E.M.E. Zayed and M.A.M. Abdelaziz, Applications of a generalized extended ( G′/G)-expansion method to find exact solutions of two nonlinear Schrodinger equations with variable coefficients, Acta Phys. Polonica A 121 (2012), pp. 573–580.
  • E.M.E. Zayed and A.G. Al-Nowehy, Exact solutions for nonlinear foam drainage equation, Indian J. Phys. 91 (2017), pp. 209–218.
  • E.M.E. Zayed and K.A. Gepreel, Some applications of the G′/G-expansion method to non-linear partial differential equations, Appl. Math. Comput. 212 (2009), pp. 1–13.
  • E.M.E. Zayed and K.A. Gepreel, Three types of traveling wave solutions for nonlinear evolution equations using the ( G′/G)-expansion method, Int. J. Nonlinear Sci. 7 (2009), pp. 501–512.
  • E.M.E. Zayed and K.A. Gepreel, New applications of an improved ( G′/G)-expansion method to construct the exact solutions of nonlinear pdes, Int. J. Nonlinear Sci. Numer. Simul. 11 (2010), pp. 273–283.
  • E.M.E. Zayed and R.M.A. Shohib, Short comment on exp⁡(ϕ(ξ))-expansion method, Optik 204 (2020), p. 164113.
  • Q. Zhou, Optical solitons in medium with parabolic law nonlinearity and higher order dispersion, Waves Random Complex Media 25 (2016), pp. 52–59.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.