arXiv:2306.15558·v3·High Energy Physics — Phenomenology
Collider constraints on massive gravitons coupling to photons
David d'Enterria (CERN)🇨🇭 · Malak Ait Tamlihat (Mohammed V University in Rabat)🇲🇦 · Laurent Schoeffel (CEA)🇫🇷 · Hua-Sheng Shao (LPTHE)🇫🇷 · Yahya Tayalati (Mohammed V University in Rabat)🇲🇦
Abstract
We study the discovery potential of massive graviton-like spin-2 particles coupled to standard model fields, produced in photon-photon collisions at the Large Hadron Collider (LHC) as well as in electron-positron () collisions, within an effective theory with and without universal couplings. Our focus is on a massive graviton G coupled to the electromagnetic field, which decays via and leads to a resonant excess of diphotons over the light-by-light scattering continuum at the LHC, and of triphoton final states at colliders. Based on similar searches performed for pseudoscalar axion-like particles (ALPs), and taking into account the different cross sections, partial widths, and decay kinematics of the pseudoscalar and tensor particles, we reinterpret existing experimental bounds on the ALP- coupling into G- ones. Using the available data, exclusion limits on the graviton-photon coupling are set down to --0.05~TeV for masses ~MeV--2~TeV. Such bounds can be improved by factors of 100 at Belle~II in the low-mass region, and of 4 at the HL-LHC at high masses, with their expected full integrated luminosities.
Comments: 26 pages, 7 figures