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Broken baby Skyrmions

2011/06/30 by Juha Jäykkä, Martin Speight, Paul Sutcliffe · 2 citations
Mathematics · Physics and Astronomy · #Baryon #Black Holes and Theoretical Physics #Dihedral group #Equilateral triangle #Geometry #Group (periodic table) #Lattice (music) #Mathematical physics #Mathematics #Nonlinear system #Particle physics #Physics #Physics of Superconductivity and Magnetism #Quantum Chromodynamics and Particle Interactions #Quantum mechanics #Skyrmion #Soliton #Symmetry (geometry) #Theoretical physics #hep-th

paper · pdf · doi:10.1098/rspa.2011.0543

published as Proc. R. Soc. A 468, 1085-1104 (2012) · 20 pages, 7 figures. Substantially extended version plus corrections

arxiv created 2011/09/01 · openalex publication_date 2011/12/07 · arxiv updated 2015/05/28 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

Abstract The baby Skyrme model is a (2+1)-dimensional analogue of the Skyrme model, in which baryons are described by topological solitons. We introduce a version of the baby Skyrme model in which the global O(3) symmetry is broken to the dihedral group DN. It is found that the single soliton in this theory is composed of N partons that are topologically confined. The case N=3 is studied in some detail and multi-soliton solutions are computed and related to polyiamonds, which are plane figures composed of equilateral triangles joined by common edges. It is shown that the solitons may be viewed as pieces of a doubly periodic soliton lattice. It is proved, for a general baby Skyrme model on a general torus, that the condition that the energy of a soliton lattice is critical with respect to variations of the torus is equivalent to the field satisfying a virial relation and being, in a precise sense, conformal on average. An alternative model with D3 symmetry is also introduced, which has an exact explicit soliton lattice solution. Soliton solutions are computed and compared in the two D3 theories. Some comments are made regarding the extension of these ideas to the Skyrme model.

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