Axial non-standard neutrino interactions can mimic or be disentangled from nucleon form-factor effects in neutral-current quasi-elastic and resonance scattering, and tau-flavor couplings may already be bounded by KamLAND atmospheric data.
Global Fit of Electron and Neutrino Elastic Scattering Data to Determine the Strange Quark Contribution to the Vector and Axial Form Factors of the Nucleon
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abstract
We present a global fit of neutral-current elastic (NCE) neutrino-scattering data and parity-violating electron-scattering (PVES) data with the goal of determining the strange quark contribution to the vector and axial form factors of the proton. Previous fits of this form included data from a variety of PVES experiments (PVA4, HAPPEx, G0, SAMPLE) and the NCE neutrino and anti-neutrino data from BNL E734. These fits did not constrain the strangeness contribution to the axial form factor $G_A^s(Q^2)$ at low $Q^2$ very well because there was no NCE data for $Q^2<0.45$ GeV$^2$. Our new fit includes for the first time MiniBooNE NCE data from both neutrino and anti-neutrino scattering; this experiment used a hydrocarbon target and so a model of the neutrino interaction with the carbon nucleus was required. Three different nuclear models have been employed: a relativistic Fermi gas model, the SuperScaling Approximation model, and a spectral function model. We find a tremendous improvement in the constraint of $G_A^s(Q^2)$ at low $Q^2$ compared to previous work, although more data is needed from NCE measurements that focus on exclusive single-proton final states, for example from MicroBooNE.
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Neutrino nucleus Quasi-Elastic and resonant Neutral Current scatterings with Non-Standard Interactions
Axial non-standard neutrino interactions can mimic or be disentangled from nucleon form-factor effects in neutral-current quasi-elastic and resonance scattering, and tau-flavor couplings may already be bounded by KamLAND atmospheric data.