English

Implementation of a relativistic distorted wave impulse approximation model into the NEUT event generator

High Energy Physics - Experiment 2025-09-25 v2 High Energy Physics - Phenomenology

Abstract

We describe the implementation of a model for charged-current quasi-elastic (CCQE) neutrino-nucleus scattering in the NEUT Monte Carlo event generator. This model employs relativistic momentum distributions obtained from mean field theory and relativistic distorted waves to describe the initial and final nucleon states. Final state interactions, both elastic and inelastic, are modelled by combining distorted waves with the NEUT intranuclear cascade, offering a more accurate representation of the interactions experienced by scattered nucleons. The model and its implementation in NEUT are described in detail and benchmarked against νμ\nu_{\mu}-12^{12}C scattering cross-section measurements from T2K and MINERν\nuA, as well as νμ\nu_{\mu}-40^{40}Ar measurements from MicroBooNE. Results, including transverse kinematic imbalance variables and scattered nucleon kinematics, show improved χ2\chi^2 values compared to other CCQE models in NEUT. Furthermore, the model consistently predicts lower cross sections in CCQE-dominated regions, indicating potential for further refinement, such as incorporating two-body currents or the use of more advanced nucleon axial form factors consistent with lattice QCD calculations.

Keywords

Cite

@article{arxiv.2502.10629,
  title  = {Implementation of a relativistic distorted wave impulse approximation model into the NEUT event generator},
  author = {J. McKean and R. González-Jiménez and M. Kabirnezhad and J. M. Udías and Y. Uchida},
  journal= {arXiv preprint arXiv:2502.10629},
  year   = {2025}
}

Comments

36 pages, 9 figures in main text and 12 figures in appendices (21 figures total)

R2 v1 2026-06-28T21:45:10.648Z