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    Phase-controlled elastic, inelastic, and coalescent collisions of two-dimensional flat-top solitons

    M. O. D. Alotaibi1,*, Y. O. A. Abughnheim2, L. Al Sakkaf3, and U. Al Khawaja2,4

    • *Contact author: majed.alotaibi@ku.edu.kw

    Phys. Rev. E 113, 054202 – Published 6 May, 2026

    DOI: https://doi.org/10.1103/2fqh-mhs7

    Abstract

    We investigate elastic, inelastic, and coalescent collisions between two-dimensional flat-top solitons supported by the cubic-quintic nonlinear Schrödinger equation. Numerical simulations reveal distinct collision regimes ranging from nearly elastic scattering to strongly inelastic interactions leading to long-lived merged states. We demonstrate that the transition between these regimes is primarily controlled by the relative phase of the solitons at the collision point, with out-of-phase collisions suppressing overlap and in-phase collisions promoting strong interaction. Kinetic-energy diagnostics are introduced to quantitatively characterize collision outcomes and to identify phase- and separation-dependent windows of elasticity. To interpret the observed dynamics, we extract effective phase-dependent interaction potentials from collision trajectories, providing a mechanical picture of attraction and repulsion between flat-top solitons. The stability of merged states formed after strongly inelastic collisions is explained by their lower energetic cost, arising from interfacial energetics, where a balance between internal pressure and edge tension plays a central role. A variational analysis based on direct energy minimization supports this picture by revealing robust energetic minima associated with stationary two-dimensional flat-top solitons.

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