Fermion Mass Generation without Symmetry Breaking
arXiv:2406.00100 · doi:10.1103/PhysRevD.110.065014
Abstract
We study the generation of fermion mass in a context where interactions break a discrete chiral symmetry. Then, fermion mass is not protected by a symmetry, no symmetry is broken by the generation of mass, and a vanishing mass no longer enhances a symmetry. We elaborate these scenarios for template fermionic and Yukawa theories in three dimensions where mass can be generated either by fluctuations, strong dynamics, or the vacuum expectation value of a scalar field. We find that fluctuation-induced contributions to fermion mass are parametrically suppressed in the number of fermion flavours . The generation of fermion mass then takes the form of a rapid crossover which turns into a second order quantum phase transition for large , much like in settings with fundamental chiral symmetry. We further discuss theories where fermion mass can be generated spontaneously without breaking any symmetry other than scale symmetry. Implications of our findings are discussed.
21 pages, 6 figures; v2: 2 figures and clarifications added, version accepted for publication in PRD
References in corpus (15)
- Exact evolution equation for the effective potential
- Interactions and phase transitions on graphene's honeycomb lattice
- Light scalar at LHC: the Higgs or the dilaton?
- Asymptotic safety guaranteed
- Symmetric Mass Generation
- Massive fermions without fermion bilinear condensates
- Symmetric Mass Generation in the 1+1 Dimensional Chiral Fermion 3-4-5-0 Model
- Critical models in the complex field plane
- Asymptotic safety with Majorana fermions and new large N equivalences
- Non-Gaussian fixed points in fermionic field theories without auxiliary Bose-fields
- Disorder Operator and Rényi Entanglement Entropy of Symmetric Mass Generation
- Fermi Surface Symmetric Mass Generation
- Line of Fixed Points in Gross-Neveu Theories
- Critical Fermions with Spontaneously Broken Scale Symmetry
- Scale symmetry breaking and generation of mass at quantum critical points