Perturbation of Highly Dispersive Solitons in Optical Metamaterials with Twin-Core Couplers and Power-Law of Self-Phase Modulation by Laplace–Adomian Decomposition
Abstract
1. Introduction
- The authors in [1,2,3] start from a coupled-system generalization of the nonlinear Schrödinger equation (NLSE) tailored for directional couplers made of optical metamaterials. These metamaterials introduce negative refraction, anomalous dispersion, and strongly tailorable nonlinear indices (Kerr-like, power-law, or generalized forms, including cubic–quartic dependence).
- Cross-phase modulation strengths and coupling coefficients, which adjust power transfer thresholds and switching behavior in all-optical logic and switching, were recently studied and reported in [8].
- In refs. [9,10,11,12], the authors investigate stochastic and perturbed regimes, such as the generalized nonlinear Schrödinger equation with noise. They suggest that soliton-like robustness may continue to exist in realistic, noisy coupler–metamaterial systems that are pertinent to on-chip integrated photonics.
2. Description of the Governing Model
- Linear-temporal evolutions are represented by and .
- The coefficients and are employed to measure Intra-Modal Dispersion (IMD).
- Chromatic Dispersion (CD) is represented by and .
- Third-Order Dispersion (3OD) is represented by and .
- The values and stand for Fourth-Order Dispersion (4OD).
- The values and stand for Fifth-Order Dispersion (5OD).
- The values and stand for Sixth-Order Dispersion (6OD).
- The coefficients for power-law nonlinearity are , where .
- The constants , , and , with , represent coefficients associated with optical metamaterials.
- The constants , for , indicate coupling parameters.
- Self-steepening (SS) terms are represented by , while higher-order nonlinear dispersion terms are represented by and , with .
3. Highly Dispersive Solitons for the Model Given in Equations (1) and (2)
4. Utilization of the Laplace Transform in Conjunction with the Adomian Decomposition Method
- The operator denotes the derivative with respect to t.
- is the th order linear differential operator .
- Q and R are nonlinear operators acting on the functions q and r.
The Adomian Polynomial Calculation
5. Graphical Results and Numerical Simulations
Bright Soliton Simulation
- Case :Furthermore, let us consider the initial profiles of the soliton at time :Figure 1 shows the 3D simulations for the evolution profiles of and , the 2D density plots, and the absolute errors from the 12-step iteration for this case.
- Case :Furthermore, let us consider the initial profiles of the soliton at time :Figure 2 shows the 3D simulations for the evolution profiles of and , the 2D density plots, and the absolute errors from the 12-step iteration for this case.
- Case :Furthermore, let us consider the initial profiles of the soliton at time :Figure 3 shows the 3D simulations for the evolution profiles of and , the 2D density plots, and the absolute errors from the 12-step iteration for this case.
- Case :Furthermore, let us consider the initial profiles of the soliton at time :Figure 4 shows the 3D simulations for the evolution profiles of and , the 2D density plots, and the absolute errors from the 12-step iteration for this case.
6. Conclusions and Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A. First Adomian Polynomials An and Bn
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González-Gaxiola, O.; Ahmed, J.S.; Calucag, L.S.; Biswas, A. Perturbation of Highly Dispersive Solitons in Optical Metamaterials with Twin-Core Couplers and Power-Law of Self-Phase Modulation by Laplace–Adomian Decomposition. Algorithms 2026, 19, 342. https://doi.org/10.3390/a19050342
González-Gaxiola O, Ahmed JS, Calucag LS, Biswas A. Perturbation of Highly Dispersive Solitons in Optical Metamaterials with Twin-Core Couplers and Power-Law of Self-Phase Modulation by Laplace–Adomian Decomposition. Algorithms. 2026; 19(5):342. https://doi.org/10.3390/a19050342
Chicago/Turabian StyleGonzález-Gaxiola, Oswaldo, Jehan Saleh Ahmed, Lina S. Calucag, and Anjan Biswas. 2026. "Perturbation of Highly Dispersive Solitons in Optical Metamaterials with Twin-Core Couplers and Power-Law of Self-Phase Modulation by Laplace–Adomian Decomposition" Algorithms 19, no. 5: 342. https://doi.org/10.3390/a19050342
APA StyleGonzález-Gaxiola, O., Ahmed, J. S., Calucag, L. S., & Biswas, A. (2026). Perturbation of Highly Dispersive Solitons in Optical Metamaterials with Twin-Core Couplers and Power-Law of Self-Phase Modulation by Laplace–Adomian Decomposition. Algorithms, 19(5), 342. https://doi.org/10.3390/a19050342

