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Parity Violating Measurements of Neutron Densities
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abstract
Parity violating electron nucleus scattering is a clean and powerful tool for measuring the spatial distributions of neutrons in nuclei with unprecedented accuracy. Parity violation arises from the interference of electromagnetic and weak neutral amplitudes, and the $Z^0$ of the Standard Model couples primarily to neutrons at low $Q^2$. The data can be interpreted with as much confidence as electromagnetic scattering. After briefly reviewing the present theoretical and experimental knowledge of neutron densities, we discuss possible parity violation measurements, their theoretical interpretation, and applications. The experiments are feasible at existing facilities. We show that theoretical corrections are either small or well understood, which makes the interpretation clean. The quantitative relationship to atomic parity nonconservation observables is examined, and we show that the electron scattering asymmetries can be directly applied to atomic PNC because the observables have approximately the same dependence on nuclear shape.
Forward citations
Cited by 2 Pith papers
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Neutrino, Electroweak and Nuclear Physics from COHERENT Elastic Neutrino-Nucleus Scattering with a New Quenching Factor
A reanalysis of COHERENT scattering data with a new quenching factor tightens the neutron radius and weak angle measurements and produces the first lab limits on the muon neutrino charge and the muon-tau transition charge.
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Dark photon in parity-violating electron scatterings
Parity-violating electron scattering can reveal a heavy dark photon through up to 10% shifts in the couplings C1q, C2q, and C3q, and fits to parity data plus the CDF W mass favor a dark photon above the Z boson mass.
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