Search for a T-odd, P-even Triple Correlation in Neutron Decay
T. E. Chupp, R. L. Cooper, K. P. Coulter, S. J. Freedman, B. K., Fujikawa, A. Garc\'ia, G. L. Jones, H. P. Mumm, J. S. Nico, A. K. Thompson,, C. A. Trull, F. E. Wietfeldt, and J. F. Wilkerson

TL;DR
This study improves the sensitivity of detecting T-odd, P-even interactions in neutron decay by measuring the triple correlation D with high precision, testing for physics beyond the Standard Model.
Contribution
It provides the most sensitive measurement of the T-odd, P-even triple correlation D in neutron decay, constraining possible new physics contributions beyond the Standard Model.
Findings
Measured D = [-0.94 ± 1.89 (stat) ± 0.97 (sys)] × 10^{-4}
Set new limits on time-reversal violation in neutron decay
Constrained scalar and tensor interactions in extensions of the Standard Model
Abstract
Background: Time-reversal-invariance violation, or equivalently CP violation, may explain the observed cosmological baryon asymmetry as well as signal physics beyond the Standard Model. In the decay of polarized neutrons, the triple correlation D<J_{n}>\cdot(p_{e}\timesp_{\nu}) is a parity-even, time-reversal- odd observable that is uniquely sensitive to the relative phase of the axial-vector amplitude with respect to the vector amplitude. The triple correlation is also sensitive to possible contributions from scalar and tensor amplitudes. Final-state effects also contribute to D at the level of 1e-5 and can be calculated with a precision of 1% or better. Purpose: We have improved the sensitivity to T-odd, P-even interactions in nuclear beta decay. Methods: We measured proton-electron coincidences from decays of longitudinally polarized neutrons with a highly symmetric detector array…
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