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On the spectrum of the Faddeev-Popov operator in topological background fields

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arxiv hep-th/0511307 v1 pith:2724J54M submitted 2005-11-30 hep-th hep-lathep-ph

classification hep-thhep-lathep-ph
keywords confinementfaddeev-popovoperatorquarkspectrumtopologicalvortexbackground
verification ladder T0 review T1 audit T2 compute T3 formal

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In the Gribov-Zwanziger scenario the confinement of gluons is attributed to an enhancement of the spectrum of the Faddeev-Popov operator near eigenvalue zero. This has been observed in functional and also in lattice calculations. The linear rise of the quark-anti-quark potential and thus quark confinement on the other hand seems to be connected to topological excitations. To investigate whether a connection exists between both aspects of confinement, the spectrum of the Faddeev-Popov operator in two topological background fields is determined analytically in SU(2) Yang-Mills theory. It is found that a single instanton, which is likely irrelevant to quark confinement, also sustains only few additional zero-modes. A center vortex, which is likely important to quark confinement, is found to contribute much more zero-modes, provided the vortex is of sufficient flux. Furthermore, the corresponding eigenstates in the vortex case satisfy one necessary condition for the confinement of quarks.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Blind Spots of the Zwanziger Horizon Function

    hep-lat 2026-08 conditional novelty 6.0 of 10

    For radial SU(2) hedgehog backgrounds, the first Faddeev-Popov zero mode can be orthogonal to the source in Zwanziger's horizon function, making the first Gribov-horizon crossing source-dark.

  2. Generic framework for non-perturbative QCD in light hadrons

    hep-ph 2025-01 conditional novelty 2.0 of 10

    The instanton liquid model, with instanton size, density, and quark mass as its main inputs, is presented as a generic framework for light-hadron vacuum condensates, matrix elements, and form factors.

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