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arXiv:2412.20547·v1·High Energy Physics — Theory

Cascading from Supersymmetric Yang-Mills Theory to Confinement and Chiral Symmetry Breaking in Adjoint QCD

Eric D'Hoker🇺🇸 · Thomas T. Dumitrescu🇺🇸 · Efrat Gerchkovitz🇮🇱 · Emily Nardoni🇺🇸

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Abstract

We argue that adjoint QCD in 3+1 dimensions, with any gauge group and two Weyl fermion flavors (i.e. one adjoint Dirac fermion), confines and spontaneously breaks its chiral symmetries via the condensation of a fermion bilinear. We flow to this theory from pure SUSY Yang-Mills theory with the same gauge group, by giving a SUSY-breaking mass to the scalars in the vector multiplet. This flow can be analyzed rigorously at small , where it leads to a deconfined vacuum at the origin of the Coulomb branch. The analysis can be extended to all using an Abelian dual description that arises from the multi-monopole points of the theory. At each such point, there are hypermultiplet Higgs fields , which are doublets. We provide a detailed study of the phase diagram as a function of , by analyzing the semi-classical phases of the dual using a combination of analytic and numerical techniques. The result is a cascade of first-order phase transitions, along which the Higgs fields successively turn on, and which interpolates between the Coulomb branch at small , where all , and a maximal Higgs branch, where all , at sufficiently large . We show that this maximal Higgs branch precisely matches the confining and chiral symmetry breaking phase of two-flavor adjoint QCD, including its broken and unbroken symmetries, its massless spectrum, and the expected large- scaling of various observables. The spontaneous breaking pattern , consistent with the Vafa-Witten theorem, is ensured by an intricate alignment mechanism for the in the dual, and leads to a sigma model of increasing radius along the cascade.

Comments: 191 pages, 33 figures

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