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The Large Hadron electron Collider as a bridge project for CERN

High Energy Physics - Experiment 2025-10-27 v3 High Energy Physics - Phenomenology

Abstract

The LHeC is the project for delivering electron-nucleon collisions at CERN using the HL-LHC beams. An Energy Recovery Linac in racetrack configuration will provide 50 GeV electrons to achieve centre-of-mass energies around 1 TeV/nucleon and instantaneous luminosities around 103410^{34} cm2^{-2}s1^{-1}. The LHeC program elaborated in the CDR of 2021 included a phase with concurrent operation of electron-hadron and hadron-hadron collisions, followed by a standalone phase of electron-hadron collisions only. In view of the current HL-LHC schedule, in this paper we have examined the possibilities of a program after the regular HL-LHC program with only electron-proton operation. In this operation mode, the LHeC would serve as an impactful bridge project between major colliders at CERN. The standalone physics program comprises electroweak, Higgs, top-quark, BSM and strong-interaction physics. In addition, it empowers the physics analyses at the HL-LHC by retrofitting measurements and searches with significantly more precise knowledge of the proton structure and αs\alpha_s. The accelerator technology deployed in the Energy Recovery Linac for the LHeC is a major stepping-stone for the performance, cost reduction and training for future colliders. The capital investments in the LHeC electron accelerator can be reused in a cost-efficient way as the injector for the FCC-ee. Finally, data from the LHeC are essential to enable the physics potential of any new high-energy hadron collider. The operational plan of 6 years easily fits in the period between two major colliders at CERN. Similar to the LHeC empowering the HL-LHC physics program, the FCC-eh would be an impactful addition to the FCC physics program.

Keywords

Cite

@article{arxiv.2503.17727,
  title  = {The Large Hadron electron Collider as a bridge project for CERN},
  author = {F. Ahmadova and K. André and N. Armesto and G. Azuelos and O. Behnke and M. Boonekamp and M. Bonvini and D. Britzger and O. Brüning and T. A. Bud and A. M. Cooper-Sarkar and J. D'Hondt and M. D'Onofrio and O. Fischer and L. Forthomme and F. Giuli and C. Gwenlan and E. Hammou and B. Holzer and H. Khanpour and U. Klein and P. Kostka and T. Lappi and H. Mäntysaari and B. Mellado and P. R. Newman and F. I. Olness and J. A. Osborne and Y. Papaphilippou and H. Paukkunen and K. Piotrzkowski and A. Polini and J. Rojo and M. Schott and S. Schumann and C. Schwanenberger and A. M. Staśto and A. Stocchi and S. Tentori and M. Tevio and C. Wang and Y. Yamazaki},
  journal= {arXiv preprint arXiv:2503.17727},
  year   = {2025}
}

Comments

34 pages, LaTeX, 23 figures, to be annexed to the submission to the European Strategy for Particle Physics; v2: authors and references added, misprints corrected; v3: kappa3 plots updated

R2 v1 2026-06-28T22:30:48.904Z