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Energy recovery twin linear $e^+e^-$, $e^-e^-$ colliders (ERLC ) with high luminosities and accelerating gradients

Accelerator Physics 2026-05-18 v5 High Energy Physics - Experiment High Energy Physics - Phenomenology

Abstract

A recently proposed superconducting linear collider with energy recovery (ERLC) and multiple beam reuse employs twin RF structures to eliminate parasitic collisions in the linacs. Such a collider can operate in either pulsed or continuous-wave (CW) mode, achieving a luminosity of O(1036){\cal O}(10^{36}) cm2^{-2}s1^{-1} at 2E02E_0 = 250--500 GeV. This paper demonstrates that in pulsed mode, the ERLC luminosity is independent of the accelerating gradient for a fixed total power, enabling operation at the highest available gradients. A similar independence holds for the CW mode when the available power significantly exceeds the operational threshold. The luminosity scales with the cavity quality factor as LQ01/2L\propto Q_0^{1/2}. We also present, for the first time, a study of a twin eee^-e^- ERLC and estimate its performance. This configuration is simpler than the e+ee^+e^- version as it eliminates the need for beam recirculation; electrons can be generated anew for each cycle. In this case, the luminosity scales as LQ01/4L\propto Q_0^{1/4}. Furthermore, the use of traveling-wave (TW) RF structures allows for higher gradients and reduced thermal loading. We show that an ERLC with GG = 40 MeV/m can operate in CW mode, reaching luminosities of Le+eL_{e^+e^-}= (1-2.5)×1036\times 10^{36} and LeeL_{e^-e^-}= (3-7)×1036\times 10^{36} cm2^{-2}s1^{-1} at 2E02E_0 = 250 and 500 GeV, respectively, with a total power consumption of 150-300 MW. These results position the ERLC as a highly promising candidate for a future Higgs factory.

Keywords

Cite

@article{arxiv.2302.09758,
  title  = {Energy recovery twin linear $e^+e^-$, $e^-e^-$ colliders (ERLC ) with high luminosities and accelerating gradients},
  author = {V. I. Telnov},
  journal= {arXiv preprint arXiv:2302.09758},
  year   = {2026}
}

Comments

9 pages, 8 figures

R2 v1 2026-06-28T08:44:07.893Z