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Angular distributions in electroweak pion production off nucleons: odd parity hadron terms, strong relative phases and model dependence

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arxiv 1807.11281 v2 pith:SPTI4JK6 submitted 2018-07-30 hep-ph hep-exnucl-exnucl-th

Angular distributions in electroweak pion production off nucleons: odd parity hadron terms, strong relative phases and model dependence

classification hep-ph hep-exnucl-exnucl-th
keywords piondistributionsproductionangularcurrentnucleonsparitycross
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The study of pion production in nuclei is important for signal and background determinations in current and future neutrino oscillation experiments. The first step, however, is to understand the pion production reactions at the free nucleon level. We present an exhaustive study of the charged-current and neutral-current neutrino and antineutrino pion production off nucleons, paying a special attention to the angular distributions of the outgoing pion. We show, using general arguments, that parity violation and time-reversal odd correlations in the weak differential cross sections are generated from the interference between different contributions to the hadronic current that are not relatively real. Next, we present a detailed comparison of three, state of the art, microscopic models for electroweak pion production off nucleons, and we also confront their predictions with polarized electron data, as a test of the vector content of these models. We also illustrate the importance of carrying out a comprehensive test at the level of outgoing pion angular distributions, going beyond comparisons done for partially integrated cross sections, where model differences cancel to a certain extent. Finally, we observe that all charged and neutral current distributions show sizable anisotropies, and identify channels for which parity violating effects are clearly visible. Based on the above results, we conclude that the use of isotropic distributions for the pions in the center of mass of the final pion-nucleon system, as assumed by some of the Monte Carlo event generators, needs to be improved by incorporating the findings of microscopic calculations.

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