Cold Darkogenesis: Dark Matter and Baryon Asymmetry in Light of the PTA Signal

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Hauptverfasser: Fujikura, Kohei, Girmohanta, Sudhakantha, Nakai, Yuichiro, Zhang, Zhihao
Format: Preprint
Veröffentlicht: 2024
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author Fujikura, Kohei
Girmohanta, Sudhakantha
Nakai, Yuichiro
Zhang, Zhihao
author_facet Fujikura, Kohei
Girmohanta, Sudhakantha
Nakai, Yuichiro
Zhang, Zhihao
contents We build upon the intriguing possibility that the recently reported nano-Hz gravitational wave signal by Pulsar Timing Array (PTA) experiments is sourced by a strong first-order phase transition from a nearly conformal dark sector. The phase transition has to be strongly supercooled to explain the signal amplitude, while the critical temperature has to be in the $\cal{O}$(GeV) range, as dictated by the peak frequency of the gravitational wave spectrum. However, the resulting strong supercooling exponentially dilutes away any pre-existing baryon asymmetry and dark matter, calling for a new paradigm of their productions. We then develop a mechanism of cold darkogenesis that generates a dark asymmetry during the phase transition from the textured dark $SU(2)_{\rm D}$ Higgs field. This dark asymmetry is transferred to the visible sector via neutron portal interactions, resulting in the observed baryon asymmetry. Furthermore, the mechanism naturally leads to the correct abundance of asymmetric dark matter, with self-interaction of the scale that is of the right order to solve the diversity problem in galactic rotation curves. Collider searches for mono-jets and dark matter direct detection experiments can dictate the viability of the model.
format Preprint
id arxiv_https___arxiv_org_abs_2406_12956
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Cold Darkogenesis: Dark Matter and Baryon Asymmetry in Light of the PTA Signal
Fujikura, Kohei
Girmohanta, Sudhakantha
Nakai, Yuichiro
Zhang, Zhihao
High Energy Physics - Phenomenology
Cosmology and Nongalactic Astrophysics
High Energy Physics - Experiment
High Energy Physics - Theory
We build upon the intriguing possibility that the recently reported nano-Hz gravitational wave signal by Pulsar Timing Array (PTA) experiments is sourced by a strong first-order phase transition from a nearly conformal dark sector. The phase transition has to be strongly supercooled to explain the signal amplitude, while the critical temperature has to be in the $\cal{O}$(GeV) range, as dictated by the peak frequency of the gravitational wave spectrum. However, the resulting strong supercooling exponentially dilutes away any pre-existing baryon asymmetry and dark matter, calling for a new paradigm of their productions. We then develop a mechanism of cold darkogenesis that generates a dark asymmetry during the phase transition from the textured dark $SU(2)_{\rm D}$ Higgs field. This dark asymmetry is transferred to the visible sector via neutron portal interactions, resulting in the observed baryon asymmetry. Furthermore, the mechanism naturally leads to the correct abundance of asymmetric dark matter, with self-interaction of the scale that is of the right order to solve the diversity problem in galactic rotation curves. Collider searches for mono-jets and dark matter direct detection experiments can dictate the viability of the model.
title Cold Darkogenesis: Dark Matter and Baryon Asymmetry in Light of the PTA Signal
topic High Energy Physics - Phenomenology
Cosmology and Nongalactic Astrophysics
High Energy Physics - Experiment
High Energy Physics - Theory
url https://arxiv.org/abs/2406.12956