English

Probing dark gauge boson via Einstein-Cartan portal

High Energy Physics - Phenomenology 2022-04-27 v2 General Relativity and Quantum Cosmology High Energy Physics - Theory

Abstract

Einstein-Cartan gravity which is an alternative formulation of general relativity introduces new degrees of freedom contained in the torsion field which encodes the torsion feature of spacetime. Interestingly, the torsion field couples to all fermions through its axial-vector mode with a universal coupling η=1/8\eta=1/8 which is possible to change under the quantum effects. We argue that Einstein-Cartan gravity provides a significant portal to probe AA' dark gauge boson which resides in dark sector existing as an invisible world parallel to our own and couples to the standard model (SM) particles through only the kinetic mixing. For the (very) small kinetic mixing, searches for the AA' from Drell-Yan processes are insensitive due to the suppressed production cross-section and the considerable SM backgrounds. However, through the mediation of torsion field the pppp collisions produce dark-sector fermions which would significantly produce the AA' due to unsuppressed dark gauge coupling. We explore the potential production modes of the AA' through bremsstrahlung off dark-sector fermion and the cascade decays. Einstein-Cartan gravity suggests the torsion mass O(4)\gtrsim\mathcal{O}(4) TeV for η\eta varying around the classical value since the present scenarios would tend to produce the AA' with the high boost and large missing transverse momentum from dark-sector fermions where the SM backgrounds are low. On the other hand, the AA' search via Einstein-Cartan portal can reach even for the signal events to be not large and is also sensitive to the (very) small kinetic mixing as long as the decay channels of the AA' to dark-sector particles are inaccessible.

Keywords

Cite

@article{arxiv.2112.10446,
  title  = {Probing dark gauge boson via Einstein-Cartan portal},
  author = {Cao H. Nam},
  journal= {arXiv preprint arXiv:2112.10446},
  year   = {2022}
}

Comments

7 pages, 5 figures. Corrected a typo in Eq. (3) of v1, discussions and references added, the version accepted for publication in PRD