A curvature bound from gravitational catalysis in thermal backgrounds
arXiv:2103.05542 · doi:10.1103/PhysRevD.103.125027
Abstract
We investigate the phenomenon of gravitational catalysis, i.e., curvature-induced chiral symmetry breaking and fermion mass generation, at finite temperature. Using a scale-dependent analysis, we derive a thermal bound on the curvature of local patches of spacetime. This bound quantifies regions in parameter space that remain unaffected by gravitational catalysis and thus are compatible with the existence of light fermions as observed in Nature. While finite temperature generically relaxes the curvature bound, we observe a comparatively strong dependence of the phenomenon on the details of the curvature. Our bound can be applied to scenarios of quantum gravity, as any realistic candidate has to accommodate a sufficient number of light fermions. We argue that our bound therefore represents a test for quantum gravity scenarios: a suitably averaged spacetime in the (trans-)Planckian regime that satisfies our curvature bound does not induce correspondingly large Planckian fermion masses by gravitational catalysis. The temperature dependence derived in this work facilitates to follow the fate of gravitational catalysis during the thermal history of the (quantum) universe. In an application to the Asymptotic Safety scenario of quantum gravity, our bound translates into a temperature-dependent upper bound on the number of fermion flavors.
12 pages, 5 figures
References in corpus (11)
- Asymptotic safety in higher-derivative gravity
- Fixed Points of Higher Derivative Gravity
- Ultraviolet properties of f(R)-Gravity
- Quantum gravity and Standard-Model-like fermions
- Scale Setting for Self-consistent Backgrounds
- Asymptotically Safe Gravity with Fermions
- Chiral gap effect in curved space
- Gap generation for Dirac fermions on Lobachevsky plane in a magnetic field
- Geometrically induced magnetic catalysis and critical dimensions
- Gravitational catalysis of chiral and color symmetry breaking of quark matter in hyperbolic space
- Renormalization group flows and fixed points for a scalar field in curved space with nonminimal coupling
Cited by in corpus (6)
- Scalar-Tensor theories within Asymptotic Safety
- Asymptotically Safe Hilbert-Palatini Gravity in an On-Shell Reduction Scheme
- The weak-gravity bound and the need for spin in asymptotically safe matter-gravity models
- Heat kernel of non-minimal second-order operators
- Asymptotically Safe Gravity-Fermion systems on curved backgrounds
- Fate of chiral symmetry in Riemann-Cartan geometry