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arXiv · 2606.21995

The feasibility of single ${\Lambda}$ production via ${\ell}^{-}$ $+$ $p$ ${\to}$ ${\Lambda}$ $+$ ${\nu}_{\ell}$ at $e^{+}e^{-}$ colliders

Abstract

We present a comprehensive investigation of single ${\Lambda}$ hyperon production via the lepton-nucleon deep inelastic scattering (LNDIS) process, ${\ell}^{-}$ $+$ $p$ ${\to}$ ${\nu}_{\ell}$ $+$ ${\Lambda}$, in the experimental environment of electron-positron colliders. Our approach utilizes incident leptons originating from the decays of resonances (${J/\psi}$, ${\psi}(2S)$, ${\Upsilon}(1S)$, ${\Upsilon}(2S)$, and $Z^{0}$) produced in $e^{+}e^{-}$ collisions, which then scatter off stationary protons in the surrounding detector materials. The differential and total cross sections are calculated using baryonic transition form factors parameterized with the $z$-expansion scheme within both the quantum chromodynamics (QCD) sum rule and lattice QCD frameworks. Our results indicate that the cross section increases with center-of-mass energy and is highly sensitive to the choice of form factors, resulting in significant theoretical uncertainties. This study highlights the experimental challenges in observing the LNDIS process at $e^{+}e^{-}$ colliders and underscores the need for improved determination of baryonic form factors. It serves as a valuable reference for future experimental searches and suggests that an anomalous observation of single ${\Lambda}$ hyperon production at $e^{+}e^{-}$ colliders could indicate new physics.

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BibTeXRIS

Yueling Yang, Peisheng Tian, Shuangshi Fang, Bingbing Yang, Junfeng Sun. 2026-06-20. The feasibility of single ${\Lambda}$ production via ${\ell}^{-}$ $+$ $p$ ${\to}$ ${\Lambda}$ $+$ ${\nu}_{\ell}$ at $e^{+}e^{-}$ colliders. https://doi.org/10.1140/epjc%2Fs10052-026-15878-8

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