English

Breaking up the Proton: An Affair with Dark Forces

High Energy Physics - Phenomenology 2021-01-13 v1 High Energy Physics - Experiment

Abstract

Deep inelastic scattering of e±e^{\pm} off protons is sensitive to contributions from "dark photon" exchange. Using HERA data fit to HERA's parton distribution functions, we obtain the model-independent bound ϵ0.02\epsilon \lesssim 0.02 on the kinetic mixing between hypercharge and the dark photon for dark photon masses 10\lesssim 10 GeV. This slightly improves on the bound obtained from electroweak precision observables. For higher masses the limit weakens monotonically; ϵ1\epsilon \lesssim 1 for a dark photon mass of 55 TeV. Utilizing PDF sum rules, we demonstrate that the effects of the dark photon cannot be (trivially) absorbed into re-fit PDFs, and in fact lead to non-DGLAP (Bjorken xBx_{\rm B}-independent) scaling violations that could provide a smoking gun in data. The proposed e±pe^\pm p collider operating at s=1.3\sqrt{s} = 1.3 TeV, LHeC, is anticipated to accumulate 10310^3 times the luminosity of HERA, providing substantial improvements in probing the effects of a dark photon: sensitivity to ϵ\epsilon well below that probed by electroweak precision data is possible throughout virtually the entire dark photon mass range, as well as being able to probe to much higher dark photon masses, up to 100100 TeV.

Keywords

Cite

@article{arxiv.2007.15655,
  title  = {Breaking up the Proton: An Affair with Dark Forces},
  author = {Graham D. Kribs and David McKeen and Nirmal Raj},
  journal= {arXiv preprint arXiv:2007.15655},
  year   = {2021}
}

Comments

5 pages revtex4 + references, 3 figures

R2 v1 2026-06-23T17:32:15.891Z