Magnetic bion condensation: A new mechanism of confinement and mass gap in four dimensions
Mithat Unsal

TL;DR
This paper introduces a novel confinement mechanism in four-dimensional QCD-like theories via magnetic bion condensation, providing a microscopic derivation and analytical insights into the mass gap and nonperturbative dynamics.
Contribution
It presents the first microscopic derivation of magnetic bion-induced confinement in QCD(adj) on small $S^1 imes ^3$, revealing a new non-self-dual topological excitation mechanism.
Findings
Confinement occurs through magnetic bion condensation rather than monopole proliferation.
Magnetic bions are topologically null molecules composed of monopoles and antimonopoles.
Analytical computation of the gauge sector mass gap suggests integrability in the underlying theory.
Abstract
In recent work, we derived the long-distance confining dynamics of certain QCD-like gauge theories formulated on small based on symmetries, an index theorem, and Abelian duality. Here, we give the microscopic derivation. The solution reveals a new mechanism of confinement in QCD(adj) in the regime where we have control over both perturbative and nonperturbative aspects. In particular, consider SU(2) QCD(adj) theory with Majorana fermions, a theory which undergoes gauge symmetry breaking at small . If the magnetic charge of the BPS monopole is normalized to unity, we show that confinement occurs due to condensation of objects with magnetic charge 2, not 1. Because of index theorems, we know that such an object cannot be a two identical monopole configuration. Its net topological charge must vanish, and hence it must be topologically…
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