Implementation and investigation of electron-nucleus scattering in the neut neutrino event generator

IF 5.3 2区 物理与天体物理 Q1 Physics and Astronomy Physical Review D Pub Date : 2025-02-24 DOI:10.1103/physrevd.111.033006
Seisho Abe
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引用次数: 0

Abstract

Understanding nuclear effects is essential for improving the sensitivity of neutrino oscillation measurements. Validating nuclear models solely through neutrino scattering data is challenging due to limited statistics and the broad energy spectrum of neutrinos. In contrast, electron scattering experiments provide abundant high-precision data with various monochromatic energies and angles. Since both neutrinos and electrons interact via electroweak interactions, the same nuclear models can be applied to simulate both interactions. Thus, high-precision electron scattering data is essential for validating the nuclear models used in neutrino experiments. To enable this, the author has introduced a new electron scattering framework in the neutrino event generator, covering two interaction modes: quasielastic (QE) and single pion production. predictions of QE agree well with numerical calculations, supporting the validity of this implementation. From comparisons with predictions and inclusive electron scattering data, the momentum-dependent removal energy correction is derived, addressing effects beyond the plane wave impulse approximation. This correction is applied to neutrino interactions, observing significant changes in charged lepton kinematics. Notably, the reconstructed neutrino energy distribution shows a peak shift of approximately 20–30 MeV, which is crucial for accurately measuring neutrino oscillation parameters. Published by the American Physical Society 2025
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中子中微子事件发生器中电子-核散射的实现与研究
了解核效应对于提高中微子振荡测量的灵敏度是必不可少的。由于有限的统计数据和广泛的中微子能谱,仅通过中微子散射数据验证核模型是具有挑战性的。相比之下,电子散射实验提供了丰富的高精度数据,具有不同的单色能量和角度。由于中微子和电子都是通过电弱相互作用相互作用的,所以同样的核模型可以用来模拟这两种相互作用。因此,高精度的电子散射数据对于验证中微子实验中使用的核模型是必不可少的。为了实现这一点,作者在中微子事件发生器中引入了一个新的电子散射框架,涵盖了两种相互作用模式:准弹性(QE)和单介子产生。量化宽松的预测与数值计算非常吻合,支持了量化宽松实施的有效性。通过与预测和包含电子散射数据的比较,导出了动量依赖的去除能量修正,解决了平面波脉冲近似之外的影响。这种修正应用于中微子相互作用,观察到带电轻子运动学的显著变化。值得注意的是,重建的中微子能量分布显示出大约20-30 MeV的峰值位移,这对于精确测量中微子振荡参数至关重要。2025年由美国物理学会出版
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来源期刊
Physical Review D
Physical Review D 物理-天文与天体物理
CiteScore
9.20
自引率
36.00%
发文量
0
审稿时长
2 months
期刊介绍: Physical Review D (PRD) is a leading journal in elementary particle physics, field theory, gravitation, and cosmology and is one of the top-cited journals in high-energy physics. PRD covers experimental and theoretical results in all aspects of particle physics, field theory, gravitation and cosmology, including: Particle physics experiments, Electroweak interactions, Strong interactions, Lattice field theories, lattice QCD, Beyond the standard model physics, Phenomenological aspects of field theory, general methods, Gravity, cosmology, cosmic rays, Astrophysics and astroparticle physics, General relativity, Formal aspects of field theory, field theory in curved space, String theory, quantum gravity, gauge/gravity duality.
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