Radiative symmetry breaking from the on-shell perspective
arXiv:2407.07437 · doi:10.1016/j.physletb.2024.139155
Abstract
Models with classical scale symmetry, which feature radiative symmetry breaking, generically lead to a supercooled first-order phase transition in the early Universe resulting in a strong gravitational-wave signal, potentially observable by LISA. This is thanks to the absence of mass terms in the potential and the resulting logarithmic structure of the zero-temperature effective potential. It is known that imposing a symmetry at classical level does not prohibit breaking it by quantum corrections. In the case of scale symmetry, a mass term can in principle appear through renormalisation. This is not the case in the commonly used or Coleman-Weinberg schemes. In this work, we renormalise a scale-invariant model in the on-shell scheme to check whether parameterising it with the physical masses will introduce mass terms to the potential. We find that indeed mass terms appear for an arbitrary choice of the physical masses. However, we formulate an on-shell condition for radiative symmetry breaking, sufficient and necessary for the cancellation of mass terms in the renormalised potential, yielding a logarithmic potential needed for supercooled phase transitions.
9 pages + references, 1 figure, v2: minor text corrections, v3: small text corrections, matches version published in PLB
References in corpus (14)
- The NANOGrav 15-year Data Set: Evidence for a Gravitational-Wave Background
- Search for an isotropic gravitational-wave background with the Parkes Pulsar Timing Array
- The second data release from the European Pulsar Timing Array III. Search for gravitational wave signals
- Cosmology with the Laser Interferometer Space Antenna
- Gravitational Waves from Warped Spacetime
- Cosmological Background Interpretation of Pulsar Timing Array Data
- Primordial gravitational waves in the nano-Hertz regime and PTA data -- towards solving the GW inverse problem
- Consistent Use of Effective Potentials
- First-order Phase Transition interpretation of PTA signal produces solar-mass Black Holes
- Conformal model for gravitational waves and dark matter: A status update
- Gravitational waves from supercooled phase transitions: dimensional transmutation meets dimensional reduction
- Interplay of Infrared Divergences and Gauge-Dependence of the Effective Potential
- The Supercooling Window at Weak and Strong Coupling
- Vector dark matter in supercooled Higgs portal models