Skip to main content
Top
Published in: Optical and Quantum Electronics 4/2024

01-04-2024

Optical exact soliton solutions of nonlinear optical transmission equation using two explicit methods

Authors: Maasoomah Sadaf, Ghazala Akram, Saima Arshed

Published in: Optical and Quantum Electronics | Issue 4/2024

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

In this research paper, the main aim is to investigate the nonlinear optical transmission equation (NOTE) with two explicit methods. The NOTE is a nonlinear partial differential equation that describes the propagation of light waves in a nonlinear medium, such as an optical fiber or a waveguide. The equation takes into account the effects of dispersion, diffraction, nonlinearity, dissipation, and external potential on the evolution of the complex envelope field of the light wave. The extended \(\Big (\frac{G'}{G^{2}}\Big )\)-expansion method and \(\exp (-\phi (\eta ))\) expansion method are successfully applied on the proposed model. The new and novel soliton solutions and other solutions are obtained by the applications of these methods. These solutions include dark soliton, singular soliton, periodic solutions and rational solutions. Constraint conditions for the existence of obtained solutions are also provided in this article. Graphically, the retrieved solutions present different shapes of wave propagations which is shown by 3D graphs. These methods are being applied for the first time on the proposed model and considered as most recent techniques to obtain the soliton solutions for the proposed model.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Wirtschaft"

Online-Abonnement

Mit Springer Professional "Wirtschaft" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 340 Zeitschriften

aus folgenden Fachgebieten:

  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Versicherung + Risiko




Jetzt Wissensvorsprung sichern!

Literature
go back to reference Ahmad, I.: Local meshless method for PDEs arising from models of wound healing. Appl. Math. Model. 48, 688–710 (2017)MathSciNet Ahmad, I.: Local meshless method for PDEs arising from models of wound healing. Appl. Math. Model. 48, 688–710 (2017)MathSciNet
go back to reference Akbar, M.A., Islam, Md.E.: Study of the parametric effects on soliton propagation in optical fibers through two analytical methods. Opt. Quant. Electron. 53, 585 (2021) Akbar, M.A., Islam, Md.E.: Study of the parametric effects on soliton propagation in optical fibers through two analytical methods. Opt. Quant. Electron. 53, 585 (2021)
go back to reference Arafat, S.M.Y., Fatema, K., Islam, M.E., Akbar, M.A.: Promulgation on various genres soliton of Maccari system in nonlinear optics. Opt. Quantum Electron. 54, 206 (2022) Arafat, S.M.Y., Fatema, K., Islam, M.E., Akbar, M.A.: Promulgation on various genres soliton of Maccari system in nonlinear optics. Opt. Quantum Electron. 54, 206 (2022)
go back to reference Attaullah: Solitons solution of Riemann wave equation via modified exp function method. Symmetry 14(12), 2574 (2022) Attaullah: Solitons solution of Riemann wave equation via modified exp function method. Symmetry 14(12), 2574 (2022)
go back to reference Attaullah, Shakeel, M., Shah, N.A., Chung, J.D.: Modified exp-function method to find exact solutions of ionic currents along microtubules. Mathematics 10, 851 (2022) Attaullah, Shakeel, M., Shah, N.A., Chung, J.D.: Modified exp-function method to find exact solutions of ionic currents along microtubules. Mathematics 10, 851 (2022)
go back to reference Dianchen, L., Aly, S., Arshad, M.: Applications of extended simple equation method on unstable nonlinear Schrödinger equations. Optik 140, 136–144 (2017)ADS Dianchen, L., Aly, S., Arshad, M.: Applications of extended simple equation method on unstable nonlinear Schrödinger equations. Optik 140, 136–144 (2017)ADS
go back to reference Ebaid, A., Aly, E.H.: Exact solutions for the transformed reduced Ostrovsky equation via the f-expansion method in terms of Weierstrass-elliptic and Jacobian-elliptic functions. Wave Mot. 49(2), 296–308 (2012)ADSMathSciNet Ebaid, A., Aly, E.H.: Exact solutions for the transformed reduced Ostrovsky equation via the f-expansion method in terms of Weierstrass-elliptic and Jacobian-elliptic functions. Wave Mot. 49(2), 296–308 (2012)ADSMathSciNet
go back to reference Fan, E.: Extended tanh-function method and its applications to nonlinear equations. Phys. Lett. A 277(4–5), 212–218 (2000)ADSMathSciNet Fan, E.: Extended tanh-function method and its applications to nonlinear equations. Phys. Lett. A 277(4–5), 212–218 (2000)ADSMathSciNet
go back to reference Fang, Z.H., Duan, H.Y., Zhang, Z.H., Wang, J., Li, D.Q., Huang, Y.X., Shang, J.J., Liu, Z.Y.: Novel heat-resistance uv curable waterborne polyurethane coatings modified by melamine. Appl. Surf. Sci. 257(11), 4765–4768 (2011)ADS Fang, Z.H., Duan, H.Y., Zhang, Z.H., Wang, J., Li, D.Q., Huang, Y.X., Shang, J.J., Liu, Z.Y.: Novel heat-resistance uv curable waterborne polyurethane coatings modified by melamine. Appl. Surf. Sci. 257(11), 4765–4768 (2011)ADS
go back to reference Ghanbari, B., Baleanu, D., Al Qurashi, M.: New exact solutions of the generalized Benjamin–Bona–Mahony equation. Symmetry 11 (2020) Ghanbari, B., Baleanu, D., Al Qurashi, M.: New exact solutions of the generalized Benjamin–Bona–Mahony equation. Symmetry 11 (2020)
go back to reference Ghanbari, B.: Abundant soliton solutions for the Hirota–Maccari equation via the generalized exponential rational function method. Mod. Phys. Lett. 33, 1950106 (2019)ADSMathSciNet Ghanbari, B.: Abundant soliton solutions for the Hirota–Maccari equation via the generalized exponential rational function method. Mod. Phys. Lett. 33, 1950106 (2019)ADSMathSciNet
go back to reference Ghanbari, B., Baleanu, D.: New solutions of Gardner’s equation using two analytical methods. Front. Phys. 7, 202 (2019) Ghanbari, B., Baleanu, D.: New solutions of Gardner’s equation using two analytical methods. Front. Phys. 7, 202 (2019)
go back to reference Ghanbari, B., Baleanu, D.: New optical solutions of the fractional Gerdjikov–Ivanov equation with conformable derivative. Front. Phys. 8, 167 (2020) Ghanbari, B., Baleanu, D.: New optical solutions of the fractional Gerdjikov–Ivanov equation with conformable derivative. Front. Phys. 8, 167 (2020)
go back to reference Ghanbari, B., Gómez-Aguilar, J.F.: Optical soliton solutions for the nonlinear Radhakrishnan–Kundu–Lakshmanan equation. Mod. Phys. Lett. B 33, 1950402 (2019)ADSMathSciNet Ghanbari, B., Gómez-Aguilar, J.F.: Optical soliton solutions for the nonlinear Radhakrishnan–Kundu–Lakshmanan equation. Mod. Phys. Lett. B 33, 1950402 (2019)ADSMathSciNet
go back to reference Ghanbari, B., Gómez-Aguilar, J.F.: New exact optical soliton solutions for nonlinear Schrödinger equation with second-order spatio-temporal dispersion involving m-derivative. Mod. Phys. Lett. B 33, 1950235 (2019)ADS Ghanbari, B., Gómez-Aguilar, J.F.: New exact optical soliton solutions for nonlinear Schrödinger equation with second-order spatio-temporal dispersion involving m-derivative. Mod. Phys. Lett. B 33, 1950235 (2019)ADS
go back to reference Ghanbariand, B., Akgül, A.: Abundant new analytical and approximate solutions to the generalized Schamel equation. Phys. Scr. 95, 075201 (2020)ADS Ghanbariand, B., Akgül, A.: Abundant new analytical and approximate solutions to the generalized Schamel equation. Phys. Scr. 95, 075201 (2020)ADS
go back to reference Green, P.D., Biswas, A.: Bright and dark optical solitons with time-dependent coefficients in a non-Kerr law media. Commun. Nonlinear Sci. Numer. Simul. 15(12), 3865–3873 (2010)ADSMathSciNet Green, P.D., Biswas, A.: Bright and dark optical solitons with time-dependent coefficients in a non-Kerr law media. Commun. Nonlinear Sci. Numer. Simul. 15(12), 3865–3873 (2010)ADSMathSciNet
go back to reference Hong, W.P.: Optical solitary wave solutions for the higher order nonlinear Schrödinger equation with cubic-quintic non-Kerr terms. Opt. Commun. 194(1–3), 217–223 (2001)ADS Hong, W.P.: Optical solitary wave solutions for the higher order nonlinear Schrödinger equation with cubic-quintic non-Kerr terms. Opt. Commun. 194(1–3), 217–223 (2001)ADS
go back to reference Iqbal, M., Seadawy, A.R.: Instability of modulation wave train and disturbance of time period in slightly stable media for unstable nonlinear Schrödinger dynamical equation. Mod. Phys. Lett. supp0, 2150010 (2020) Iqbal, M., Seadawy, A.R.: Instability of modulation wave train and disturbance of time period in slightly stable media for unstable nonlinear Schrödinger dynamical equation. Mod. Phys. Lett. supp0, 2150010 (2020)
go back to reference Iqbal, M., Seadawy, A.R., Lu, D.: Construction of solitary wave solutions to the nonlinear modified Kortewege–de Vries dynamical equation in unmagnetized plasma via mathematical methods. Mod. Phys. Lett. 32, 1850183 (2018)MathSciNet Iqbal, M., Seadawy, A.R., Lu, D.: Construction of solitary wave solutions to the nonlinear modified Kortewege–de Vries dynamical equation in unmagnetized plasma via mathematical methods. Mod. Phys. Lett. 32, 1850183 (2018)MathSciNet
go back to reference Iqbal, M., Seadawy, A.R., Lu, D.: Dispersive solitary wave solutions of nonlinear further modified Korteweg–de Vries dynamical equation in an unmagnetized dusty plasma. Mod. Phys. Lett. 37, 1850217 (2018)MathSciNet Iqbal, M., Seadawy, A.R., Lu, D.: Dispersive solitary wave solutions of nonlinear further modified Korteweg–de Vries dynamical equation in an unmagnetized dusty plasma. Mod. Phys. Lett. 37, 1850217 (2018)MathSciNet
go back to reference Iqbal, M., Seadawy, A.R., Lu, D.: Applications of nonlinear longitudinal wave equation in a magneto-electro-elastic circular rod and new solitary wave solutions. Mod. Phys. Lett. 18, 1950210 (2019)MathSciNet Iqbal, M., Seadawy, A.R., Lu, D.: Applications of nonlinear longitudinal wave equation in a magneto-electro-elastic circular rod and new solitary wave solutions. Mod. Phys. Lett. 18, 1950210 (2019)MathSciNet
go back to reference Iqbal, M., Seadawy, A.R., Khalil, O.H., Lu, D.: Propagation of long internal waves in density stratified ocean for the (2+1)-dimensional nonlinear Nizhnik–Novikov–Vesselov dynamical equation. Results Phys. 16, 102838 (2020) Iqbal, M., Seadawy, A.R., Khalil, O.H., Lu, D.: Propagation of long internal waves in density stratified ocean for the (2+1)-dimensional nonlinear Nizhnik–Novikov–Vesselov dynamical equation. Results Phys. 16, 102838 (2020)
go back to reference Iqbal, M., Seadawy, A.R., Althobaiti, S.: Mixed soliton solutions for the \((2+1)\)-dimensional generalized breaking soliton system via new analytical mathematical method. Results Phys. 32, 105030 (2022) Iqbal, M., Seadawy, A.R., Althobaiti, S.: Mixed soliton solutions for the \((2+1)\)-dimensional generalized breaking soliton system via new analytical mathematical method. Results Phys. 32, 105030 (2022)
go back to reference Islam, S.M.R., Khan, K., Akbar, M.A.: Study of \(\exp (-\phi (\xi ))\)-expansion method for solving nonlinear partial differential equations. Br. J. Math. Comput. Sci. 5(3), 397 (2015) Islam, S.M.R., Khan, K., Akbar, M.A.: Study of \(\exp (-\phi (\xi ))\)-expansion method for solving nonlinear partial differential equations. Br. J. Math. Comput. Sci. 5(3), 397 (2015)
go back to reference Islam, Md.E., Barman, H.K., Akbar, M.A.: Search for interactions of phenomena described by the coupled Higgs field equation through analytical solutions. Opt. Quant. Electron. 52, 468 (2020) Islam, Md.E., Barman, H.K., Akbar, M.A.: Search for interactions of phenomena described by the coupled Higgs field equation through analytical solutions. Opt. Quant. Electron. 52, 468 (2020)
go back to reference Islam, Md.E., Hossainb, Md.M., Helalc, K.M., Basaka, U.S., Bhowmikaand, R.C., Akbar, M.A.: Solitary wave analysis of the Kadomtsev–Petviashvili model in mathematical physics. Arab. J. Basic Appl. Sci. 30, 329–340 (2023) Islam, Md.E., Hossainb, Md.M., Helalc, K.M., Basaka, U.S., Bhowmikaand, R.C., Akbar, M.A.: Solitary wave analysis of the Kadomtsev–Petviashvili model in mathematical physics. Arab. J. Basic Appl. Sci. 30, 329–340 (2023)
go back to reference Khater, M.M.A., Ghanbari, B.: On the solitary wave solutions and physical characterization of gas diffusion in a homogeneous medium via some efficient techniques. Eur. Phys. 136, 447 (2021) Khater, M.M.A., Ghanbari, B.: On the solitary wave solutions and physical characterization of gas diffusion in a homogeneous medium via some efficient techniques. Eur. Phys. 136, 447 (2021)
go back to reference Kuo, C.K., Ghanbari, B.: New exact wave solutions of the variable-coefficient (1 + 1)-dimensional Benjamin-Bona-Mahony and (2 + 1)-dimensional asymmetric Nizhnik-Novikov-Veselov equations via the generalized exponential rational function method. Eur. Phys. 134, 334 (2019) Kuo, C.K., Ghanbari, B.: New exact wave solutions of the variable-coefficient (1 + 1)-dimensional Benjamin-Bona-Mahony and (2 + 1)-dimensional asymmetric Nizhnik-Novikov-Veselov equations via the generalized exponential rational function method. Eur. Phys. 134, 334 (2019)
go back to reference Lu, D., Seadawy, A.R., Iqbal, M.: Mathematical methods via construction of traveling and solitary wave solutions of three coupled system of nonlinear partial differential equations and their applications. Results Phys. 11, 1161–1171 (2018)ADS Lu, D., Seadawy, A.R., Iqbal, M.: Mathematical methods via construction of traveling and solitary wave solutions of three coupled system of nonlinear partial differential equations and their applications. Results Phys. 11, 1161–1171 (2018)ADS
go back to reference Miao, X., Chen, Y., Zhang, Z., Liu, Z.: New exact solutions to the perturbed nonlinear Schrödinger’s equation with Kerr law nonlinearity. Appl. Math. Comput. 216, 3064–3072 (2010)MathSciNet Miao, X., Chen, Y., Zhang, Z., Liu, Z.: New exact solutions to the perturbed nonlinear Schrödinger’s equation with Kerr law nonlinearity. Appl. Math. Comput. 216, 3064–3072 (2010)MathSciNet
go back to reference Miao, X., Chen, Y., Zhang, Z., Liu, Z.: Qualitative analysis and traveling wave solutions for the perturbed nonlinear Schrödinger’s equation with Kerr law nonlinearity. Phys. Lett. A 375, 1275–1280 (2011)ADSMathSciNet Miao, X., Chen, Y., Zhang, Z., Liu, Z.: Qualitative analysis and traveling wave solutions for the perturbed nonlinear Schrödinger’s equation with Kerr law nonlinearity. Phys. Lett. A 375, 1275–1280 (2011)ADSMathSciNet
go back to reference Nikitin, V.F., Simirnov, N.N., Smirnova, M.N., Tyurenkova, V.V.: On board electronic devices safety subject to high frequency electromagnetic radiation effects. Acta Astronaut. 135, 181–186 (2017)ADS Nikitin, V.F., Simirnov, N.N., Smirnova, M.N., Tyurenkova, V.V.: On board electronic devices safety subject to high frequency electromagnetic radiation effects. Acta Astronaut. 135, 181–186 (2017)ADS
go back to reference Rizvi, S.T.R., Ali, K., Ahmad, M.: Optical solitons for Biswas–Milovic equation by new extended auxiliary equation method. Optik 204, 164181 (2020)ADS Rizvi, S.T.R., Ali, K., Ahmad, M.: Optical solitons for Biswas–Milovic equation by new extended auxiliary equation method. Optik 204, 164181 (2020)ADS
go back to reference Ryabov, P.N., Sinelshchikov, D.I., Kochanov, M.B.: Application of the Kudryashov method for finding exact solutions of the high order nonlinear evolution equations. Appl. Math. Comput. 218(7), 3965–3972 (2011)MathSciNet Ryabov, P.N., Sinelshchikov, D.I., Kochanov, M.B.: Application of the Kudryashov method for finding exact solutions of the high order nonlinear evolution equations. Appl. Math. Comput. 218(7), 3965–3972 (2011)MathSciNet
go back to reference Seadawy, A.R., Iqbal, M.: Propagation of the nonlinear damped Korteweg–de Vries equation in an unmagnetized collisional dusty plasma via analytical mathematical methods. Math. Methods Appl. Sci. 44, 737–748 (2021)ADSMathSciNet Seadawy, A.R., Iqbal, M.: Propagation of the nonlinear damped Korteweg–de Vries equation in an unmagnetized collisional dusty plasma via analytical mathematical methods. Math. Methods Appl. Sci. 44, 737–748 (2021)ADSMathSciNet
go back to reference Seadawy, A.R., Iqbal, M.: Dispersive propagation of optical solitions and solitary wave solutions of Kundu–Eckhaus dynamical equation via modified mathematical method. Appl. Math. J. Chin. Univer. 38, 16–26 (2023)MathSciNet Seadawy, A.R., Iqbal, M.: Dispersive propagation of optical solitions and solitary wave solutions of Kundu–Eckhaus dynamical equation via modified mathematical method. Appl. Math. J. Chin. Univer. 38, 16–26 (2023)MathSciNet
go back to reference Seadawy, A.R., Iqbal, M.: Dispersive propagation of optical solitions and solitary wave solutions of Kundu-Eckhaus dynamical equation via modified mathematical method. Appl. Math. J. Chin. Univer. 38, 16–26 (2023)MathSciNet Seadawy, A.R., Iqbal, M.: Dispersive propagation of optical solitions and solitary wave solutions of Kundu-Eckhaus dynamical equation via modified mathematical method. Appl. Math. J. Chin. Univer. 38, 16–26 (2023)MathSciNet
go back to reference Seadawy, A.R., Iqbal, M., Lu, D.: Applications of propagation of long-wave with dissipation and dispersion in nonlinear media via solitary wave solutions of generalized Kadomtsev-Petviashvili modified equal width dynamical equation. Comput. Math. Appl. 78, 3620–3632 (2019)MathSciNet Seadawy, A.R., Iqbal, M., Lu, D.: Applications of propagation of long-wave with dissipation and dispersion in nonlinear media via solitary wave solutions of generalized Kadomtsev-Petviashvili modified equal width dynamical equation. Comput. Math. Appl. 78, 3620–3632 (2019)MathSciNet
go back to reference Seadawy, A.R., Iqbal, M., Lu, D.: Propagation of kink and anti-kink wave solitons for the nonlinear damped modified Korteweg–de Vries equation arising in ion-acoustic wave in an unmagnetized collisional dusty plasma. Physica 544, 123560 (2020) Seadawy, A.R., Iqbal, M., Lu, D.: Propagation of kink and anti-kink wave solitons for the nonlinear damped modified Korteweg–de Vries equation arising in ion-acoustic wave in an unmagnetized collisional dusty plasma. Physica 544, 123560 (2020)
go back to reference Seadawy, A.R., Iqbal, M., Lu, D.: Construction of soliton solutions of the modify unstable nonlinear Schrödinger dynamical equation in fiber optics. Indian J. Phys. 94, 823–832 (2020)ADS Seadawy, A.R., Iqbal, M., Lu, D.: Construction of soliton solutions of the modify unstable nonlinear Schrödinger dynamical equation in fiber optics. Indian J. Phys. 94, 823–832 (2020)ADS
go back to reference Seadawy, A.R., Iqbal, M., Althobaiti, S., et al.: Wave propagation for the nonlinear modified Kortewege–de Vries Zakharov-Kuznetsov and extended Zakharov–Kuznetsov dynamical equations arising in nonlinear wave media. Opt. Quantum Electron. 53, 85 (2021) Seadawy, A.R., Iqbal, M., Althobaiti, S., et al.: Wave propagation for the nonlinear modified Kortewege–de Vries Zakharov-Kuznetsov and extended Zakharov–Kuznetsov dynamical equations arising in nonlinear wave media. Opt. Quantum Electron. 53, 85 (2021)
go back to reference Shakeel, M., Attaullah, Kbiri Alaoui, M., Zidan, A.M., Shah, N.A., Weera, W., : Closed-form solutions in a magneto-electro-elastic circular rod via generalized exp-function method. Mathematics 10, 3400 (2022) Shakeel, M., Attaullah, Kbiri Alaoui, M., Zidan, A.M., Shah, N.A., Weera, W., : Closed-form solutions in a magneto-electro-elastic circular rod via generalized exp-function method. Mathematics 10, 3400 (2022)
go back to reference Shakeel, M., Manan, A., Turki, N.B., Shah, N.A., Tag, S.M.: Novel analytical technique to find diversity of solitary wave solutions for Wazwaz–Benjamin–Bona Mahony equations of fractional order. Results Phys. 51, 106671 (2023a) Shakeel, M., Manan, A., Turki, N.B., Shah, N.A., Tag, S.M.: Novel analytical technique to find diversity of solitary wave solutions for Wazwaz–Benjamin–Bona Mahony equations of fractional order. Results Phys. 51, 106671 (2023a)
go back to reference Shakeel, M., Turki, N.B., Shah, N.A., Tag, S.M.: Diversity of soliton solutions to the \((3 + 1)\)-dimensional Wazwaz–Benjamin–Bona–Mahony equations arising in mathematical physics. Results Phys. 51, 106624 (2023b) Shakeel, M., Turki, N.B., Shah, N.A., Tag, S.M.: Diversity of soliton solutions to the \((3 + 1)\)-dimensional Wazwaz–Benjamin–Bona–Mahony equations arising in mathematical physics. Results Phys. 51, 106624 (2023b)
go back to reference Sirisubtawee, S., Koonprasert, S.: Exact traveling wave solutions of certain nonlinear partial differential equations using the-expansion method. Adv. Math. Phys. 2018, 7628651 (2018)MathSciNet Sirisubtawee, S., Koonprasert, S.: Exact traveling wave solutions of certain nonlinear partial differential equations using the-expansion method. Adv. Math. Phys. 2018, 7628651 (2018)MathSciNet
go back to reference Yao, S.W., Islam, Md.E., Akbar, M.A., Inc, M., Adel, M., Osman, M.S.: Analysis of parametric effects in the wave profile of the variant Boussinesq equation through two analytical approaches. Open Phys. 20, 778–794 (2022) Yao, S.W., Islam, Md.E., Akbar, M.A., Inc, M., Adel, M., Osman, M.S.: Analysis of parametric effects in the wave profile of the variant Boussinesq equation through two analytical approaches. Open Phys. 20, 778–794 (2022)
go back to reference Zahed, H., Seadawy, A.R., Iqbal, M.: Structure of analytical ion-acoustic solitary wave solutions for the dynamical system of nonlinear wave propagation. Open Phys. 20, 313–333 (2022) Zahed, H., Seadawy, A.R., Iqbal, M.: Structure of analytical ion-acoustic solitary wave solutions for the dynamical system of nonlinear wave propagation. Open Phys. 20, 313–333 (2022)
go back to reference Zayed, E.M., Abdelaziz, M.A.M.: Exact solutions for the nonlinear Schrödinger equation with variable coefficients using the generalized extended tanh-function, the sine-cosine and the exp-function methods. Appl. Math. Comput. 218(5), 2259–2268 (2011)MathSciNet Zayed, E.M., Abdelaziz, M.A.M.: Exact solutions for the nonlinear Schrödinger equation with variable coefficients using the generalized extended tanh-function, the sine-cosine and the exp-function methods. Appl. Math. Comput. 218(5), 2259–2268 (2011)MathSciNet
go back to reference Zhang, J., Wei, X., Lu, Y.: A generalized \(\Big (\frac{G^{\prime }}{G}\Big )\)-expansion method and its applications. Phys. Lett. A 372(20), 3653–3658 (2008)ADSMathSciNet Zhang, J., Wei, X., Lu, Y.: A generalized \(\Big (\frac{G^{\prime }}{G}\Big )\)-expansion method and its applications. Phys. Lett. A 372(20), 3653–3658 (2008)ADSMathSciNet
go back to reference Zhang, R., Shakeel, M., Turki, N.B., Shah, N.A., Tag, S.M.: Novel analytical technique for mathematical model representing communication signals: a new travelling wave solutions. Results Phys. 51, 106576 (2023) Zhang, R., Shakeel, M., Turki, N.B., Shah, N.A., Tag, S.M.: Novel analytical technique for mathematical model representing communication signals: a new travelling wave solutions. Results Phys. 51, 106576 (2023)
go back to reference Zhou, Q., Yao, D.Z., Cui, Z.: Exact solutions of the cubic-quintic nonlinear optical transmission equation with higher-order dispersion terms and self-steepening term. J. Mod. Opt. 59(1), 57–60 (2012)ADS Zhou, Q., Yao, D.Z., Cui, Z.: Exact solutions of the cubic-quintic nonlinear optical transmission equation with higher-order dispersion terms and self-steepening term. J. Mod. Opt. 59(1), 57–60 (2012)ADS
go back to reference Zhu, Jia-Min., Ma, Zheng-Yi.: Exact solutions for the cubic-quintic nonlinear Schrödinger equation. Chaos, Solitons Fractals 33(3), 958–964 (2007)ADSMathSciNet Zhu, Jia-Min., Ma, Zheng-Yi.: Exact solutions for the cubic-quintic nonlinear Schrödinger equation. Chaos, Solitons Fractals 33(3), 958–964 (2007)ADSMathSciNet
go back to reference Zuo, D., Zhang, G.: Exact solutions of the nonlocal Hirota equations. Appl. Math. Lett. 93, 66–71 (2019)MathSciNet Zuo, D., Zhang, G.: Exact solutions of the nonlocal Hirota equations. Appl. Math. Lett. 93, 66–71 (2019)MathSciNet
Metadata
Title
Optical exact soliton solutions of nonlinear optical transmission equation using two explicit methods
Authors
Maasoomah Sadaf
Ghazala Akram
Saima Arshed
Publication date
01-04-2024
Publisher
Springer US
Published in
Optical and Quantum Electronics / Issue 4/2024
Print ISSN: 0306-8919
Electronic ISSN: 1572-817X
DOI
https://doi.org/10.1007/s11082-023-06191-9

Other articles of this Issue 4/2024

Optical and Quantum Electronics 4/2024 Go to the issue