4.5 Article

A Search for Neutron to Mirror Neutron Oscillation Using Neutron Electric Dipole Moment Measurements

期刊

SYMMETRY-BASEL
卷 14, 期 3, 页码 -

出版社

MDPI
DOI: 10.3390/sym14030487

关键词

properties of the neutron; neutron lifetime; ultracold neutron; UCN storage bottle; mirror neutron

资金

  1. Sigma Xi [G2017100190747806, G2019100190747806]
  2. Ivy Plus exchange program
  3. DOE [DE-SC00-14448, DE-FG02-ER41042]
  4. NSF [1615153, 1914133]
  5. Direct For Mathematical & Physical Scien
  6. Division Of Physics [1914133] Funding Source: National Science Foundation
  7. Division Of Physics
  8. Direct For Mathematical & Physical Scien [1615153, GRANTS:13771429] Funding Source: National Science Foundation

向作者/读者索取更多资源

Baryon number violation is important for baryogenesis. The existence of mirror particles could lead to oscillation between neutrons and mirror-neutrons. Recent analysis of experiments searching for oscillation have found anomalies that could indicate the detection of neutron-mirror-neutron oscillation.
Baryon number violation is a key ingredient of baryogenesis. It has been hypothesized that there could also be a parity-conjugated copy of the standard model particles, called mirror particles. The existence of such a mirror universe has specific testable implications, especially in the domain of neutral particle oscillation, viz. the baryon number violating neutron to mirror-neutron (n-n ') oscillation. Consequently, there were many experiments that have searched for n-n ' oscillation, and imposed constraints upon the parameters that describe it. Recently, further analysis on some of these results have identified anomalies which could point to the detection of n-n ' oscillation. All the previous efforts searched for n-n ' oscillation by comparing the relative number of ultracold neutrons that survive after a period of storage for one or both of the two cases: (i) comparison of zero applied magnetic field to a non-zero applied magnetic field, and (ii) comparison where the orientation of the applied magnetic field was reversed. However, n-n ' oscillations also lead to variations in the precession frequency of polarized neutrons upon flipping the direction of the applied magnetic field. Precession frequencies are measured, very precisely, by experiments searching for the electric dipole moment. For the first time, we used the data from the latest search for the neutron electric dipole moment to constrain n-n ' oscillation. After compensating for the systematic effects that affect the ratio of precession frequencies of ultracold neutrons and cohabiting 199Hg-atoms, chief among which was due to their motion in non-uniform magnetic field, we constrained any further perturbations due to n-n ' oscillation. We thereby provide a lower limit on the n-n ' oscillation time constant of tau(nn ')/vertical bar cos(beta)vertical bar>5.7s,0.36T '

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