Gravitational anomalies, axions and a string-inspired running vacuum model in Cosmology
Nick E. Mavromatos

TL;DR
This paper reviews a string-inspired cosmological model where gravitational anomalies and axions drive inflation and dark matter phenomena, linking early universe dynamics with current cosmological observations.
Contribution
It introduces a novel inflation mechanism driven by gravitational anomalies and axions, connecting string theory concepts with observable cosmological effects.
Findings
Primordial gravitational wave condensation can induce RVM-type inflation.
Chiral fermionic matter emerges post-inflation, canceling anomalies.
KR axion may serve as dark matter and influence baryogenesis.
Abstract
I review a string-inspired cosmological model with gravitational anomalies in its early epochs, which is based on fields from the (bosonic) massless gravitational multiplet of strings, in particular gravitons and Kalb Ramond (KR), string-model independent, axions (the dilaton is assumed constant). I show how condensation of primordial gravitational waves, which are generared at the very early eras immediately after the big bang, can lead to inflation of the so called running vacuum model (RVM) type, without external inflatons. The role of the slow-roll field is played by the KR axion, but it does not drive inflation. The non-linearities in the anomaly terms do. Chiral fermionic matter excitations appear at the end of this RVM inflation, as a result of the decay of the RVM vacuum, and are held responsible for the cancellation of the primordial gravitational anomalies. Chiral anomalies,…
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Taxonomy
TopicsCosmology and Gravitation Theories · Computational Physics and Python Applications · Black Holes and Theoretical Physics
