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Non-Abelian Walls in Supersymmetric Gauge Theories

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arxiv hep-th/0405194 v2 pith:ITHUAL3G submitted 2004-05-22 hep-th hep-phmath.DG

classification hep-thhep-phmath.DG
keywords gaugemodulitheoriessolutionsconstructedcouplingfieldsgeneric
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The Bogomol'nyi-Prasad-Sommerfield (BPS) multi-wall solutions are constructed in supersymmetric U(N_C) gauge theories in five dimensions with N_F(>N_C) hypermultiplets in the fundamental representation. Exact solutions are obtained with full generic moduli for infinite gauge coupling and with partial moduli for finite gauge coupling. The generic wall solutions require nontrivial configurations for either gauge fields or off-diagonal components of adjoint scalars depending on the gauge. Effective theories of moduli fields are constructed as world-volume gauge theories. Nambu-Goldstone and quasi-Nambu-Goldstone scalars are distinguished and worked out. Total moduli space of the BPS non-Abelian walls including all topological sectors is found to be the complex Grassmann manifold SU(N_F) / [SU(N_C) x SU(N_F-N_C) x U(1)] endowed with a deformed metric.

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  1. Massless monopole-string-domain wall fermions and polyhedral vacuum fermions

    hep-th 2025-06 conditional novelty 6.0 of 10

    The exact fermion zero mode on any BPS monopole-string-domain wall background takes the profile f=Ω^{-h/4}, and its localization moves among monopoles, strings, domain walls, and convex polyhedral vacuum regions with ...

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