Back to Search Start Over

New result for the neutron β -asymmetry parameter A0 from UCNA

Authors :
Christopher Morris
E. Adamek
Dan Melconian
S. D. Moore
Jonathan W. Martin
A. Pérez Galván
J. Wexler
Michael Pitt
E. Tatar
M. Makela
G. Swift
E. B. Dees
M. Blatnik
B. W. Filippone
R. Picker
B. A. Zeck
John Ramsey
A. Knecht
R. Rios
Kevin Hickerson
B. Allgeier
T. L. Womack
Christopher Wrede
Alexander Saunders
Sky Sjue
T. J. Bowles
W. E. Sondheim
Scott Currie
Leah Broussard
C.-Y. Liu
S. Slutsky
P. Geltenbort
M. P. Mendenhall
X. Sun
Ran Hong
Steven Clayton
Takeyasu M. Ito
Nima Nouri
S. Nepal
A. R. Young
M. A. P. Brown
C. Cude-Woods
J. Hoagland
J. Liu
X. Ding
S. J. Seestrom
B. VornDick
Gary E. Hogan
D. G. Phillips
Alejandro L. Garcia
B. Plaster
Robert W. Pattie
Zhehui Wang
C. Swank
D. J. Salvat
R. Carr
R. B. Vogelaar
A. T. Holley
Syed Hamid Hasan
Source :
Physical Review C. 97
Publication Year :
2018
Publisher :
American Physical Society (APS), 2018.

Abstract

Background: The neutron β-decay asymmetry parameter A_0 defines the angular correlation between the spin of the neutron and the momentum of the emitted electron. Values for A_0 permit an extraction of the ratio of the weak axial-vector to vector coupling constants, λ≡gA/gV, which under assumption of the conserved vector current hypothesis (gV=1) determines gA. Precise values for gA are important as a benchmark for lattice QCD calculations and as a test of the standard model. Purpose: The UCNA experiment, carried out at the Ultracold Neutron (UCN) source at the Los Alamos Neutron Science Center, was the first measurement of any neutron β-decay angular correlation performed with UCN. This article reports the most precise result for A_0 obtained to date from the UCNA experiment, as a result of higher statistics and reduced key systematic uncertainties, including from the neutron polarization and the characterization of the electron detector response. Methods: UCN produced via the downscattering of moderated spallation neutrons in a solid deuterium crystal were polarized via transport through a 7 T polarizing magnet and a spin flipper, which permitted selection of either spin state. The UCN were then contained within a 3-m long cylindrical decay volume, situated along the central axis of a superconducting 1 T solenoidal spectrometer. With the neutron spins then oriented parallel or anti-parallel to the solenoidal field, an asymmetry in the numbers of emitted decay electrons detected in two electron detector packages located on both ends of the spectrometer permitted an extraction of A_0. Results: The UCNA experiment reports a new 0.67% precision result for A_0 of A_0=−0.12054(44)_(stat)(68)_(syst), which yields λ=gA/gV=−1.2783(22). Combination with the previous UCNA result and accounting for correlated systematic uncertainties produces A0=−0.12015(34)stat(63)syst and λ=gA/gV=−1.2772(20). Conclusions: This new result for A0 and gA/gV from the UCNA experiment has provided confirmation of the shift in values for gA/gV that has emerged in the published results from more recent experiments, which are in striking disagreement with the results from older experiments. Individual systematic corrections to the asymmetries in older experiments (published prior to 2002) were >10%, whereas those in the more recent ones (published after 2002) have been of the scale of

Details

ISSN :
24699993 and 24699985
Volume :
97
Database :
OpenAIRE
Journal :
Physical Review C
Accession number :
edsair.doi...........b235591ee6d93757346579b4bbfddac7