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How Large is the Space of Covariantly Constant Gauge Fields

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arxiv 2401.06728 v2 pith:J5DVK2WA submitted 2024-01-12 hep-th math-phmath.MP

classification hep-thmath-phmath.MP
keywords solutionsconstantcovariantlyfieldsgaugemagneticfieldclass
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The covariantly constant gauge fields are solutions of the sourceless Yang-Mills equation and represent the classical vacuum fields. We found that the moduli space of covariantly constant gauge fields is much larger than the space of constant chromomagnetic fields. A wider class of covariantly constant gauge field solutions representing non-perturbative magnetic flux sheets of finite thickness is obtained through the nontrivial space-time dependence of a unit colour vector. In some sense these solutions are similar to the Nielsen-Olesen magnetic flux tubes, but instead they have geometry of magnetic flux sheets and are supported without presence of any Higgs field. The infinitesimally thin magnetic sheet solutions can be associated with the singular surfaces considered by 't Hooft. The nonlocal operators that are supported on a two-dimensional surface rather than a one-dimensional curve were considered in literature. These surface operators are analogous to Wilson W(C) and 't Hooft line operators M(C) except that they are supported on a two-dimensional surface rather than a one-dimensional curve. The class of non-perturbative solutions representing a nonvanishing chromomagnetic field that fills out the whole 3D-space is obtained as well. This new class of covariantly constant gauge field solutions is constructed by using the general properties of the Cho Ansatz. We define the topological currents and the corresponding charges and demonstrate that the new solutions have a zero monopole charge density. Instead, the solutions have a nonzero Hopf invariant, which is the magnetic helicity of the Faraday force lines.

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  1. Condensation of Magnetic Fluxes and Landscape of QCD Vacuum

    hep-th 2024-11 reject novelty 3.0 of 10

    The author exhibits sourceless Yang-Mills configurations with constant energy density and singular gauge potentials, and claims they are degenerate vacua separated by potential barriers.

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