4.7 Article

QCD analysis of ΔS=0 hadronic parity violation

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PHYSICS LETTERS B
卷 833, 期 -, 页码 -

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DOI: 10.1016/j.physletb.2022.137372

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  1. U.S. Department of Energy Office of Nuclear Physics [DE-FG02-96ER40989]

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In this study, we present a QCD analysis of the effective weak Hamiltonian at hadronic energy scales for strangeness-nonchanging hadronic processes. Our results show the importance of operator mixing effects and confirm the improved agreement between the parity-violating pion-nucleon coupling constant and recent experiments.
We present a QCD analysis of the effective weak Hamiltonian at hadronic energy scales for strangenessn-onchanging (Delta S = 0) hadronic processes. Performing a leading-order renormalization group analysis in QCD from the W to the O(2 GeV) energy scale, we derive the pertinent effective Hamiltonian for hadronic parity violation, including the effects of both neutral and charged weak currents. We compute the complete renormalization group evolution of all isosectors and the evolution through heavy-flavor thresholds for the first time. We show that the additional four-quark operators that enter below the W mass scale from QCD operator mixing effects form a closed set, and they result in a 12 x 12 anomalous dimension matrix. Computing the resulting effective Hamiltonian and comparing to earlier results, we affirm the importance of operator mixing effects and find, as an example, that the parity-violating pion-nucleon coupling constant, using the factorization Ansatz and an assessment of the pertinent quark charge of the nucleon in lattice QCD at the 2 GeV scale, is in better agreement with recent experiments. (C) 2022 Published by Elsevier B.V.

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