Skyrmions in quantum Hall ferromagnets as spin-waves bound to unbalanced magnetic flux quanta
J.H. Oaknin, B. Paredes, C. Tejedor

TL;DR
This paper develops a microscopic scattering theory to describe skyrmions in quantum Hall ferromagnets, revealing how spin textures form bound states of excitons around charged defects influenced by Zeeman energy.
Contribution
It introduces a novel scattering approach linking spin wave excitations to skyrmion formation in quantum Hall systems, incorporating inhomogeneous metrics and exciton interactions.
Findings
Bound excitons depend on Zeeman coupling strength.
Skyrmions emerge as topological charge 1 textures.
Energy matches non-linear sigma model predictions.
Abstract
A microscopic description of (baby)skyrmions in quantum Hall ferromagnets is derived from a scattering theory of collective (neutral) spin modes by a bare quasiparticle. We start by mapping the low lying spectrum of spin waves in the uniform ferromagnet onto that of free moving spin excitons, and then we study their scattering by the defect of charge. In the presence of this disturbance, the local spin stiffness varies in space, and we translate it into an inhomogeneus metric in the Hilbert space supporting the excitons. An attractive potencial is then required to preserve the symmetry under global spin rotations, and it traps the excitons around the charged defect. The quasiparticle now carries a spin texture. Textures containing more than one exciton are described within a mean-field theory, the interaction among the excitons being taken into account through a new renormalization of…
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