A global phase fitting approach for the analysis of Xe electric dipole moment measurements
arXiv:2103.16221
Abstract
Measuring the size of permanent electric dipole moments (EDM) of a particle or system provides a powerful tool to test Beyond-the-Standard-Model physics. The diamagnetic Xe atom is one of the promising candidates for EDM experiments due to its obtainable high nuclear polarization and its long spin-coherence time in a homogeneous magnetic field. By measuring the spin precession frequencies of polarized Xe and He, a new upper limit on the Xe atomic EDM was reported in Phys. Rev. Lett. 123, 143003 (2019). This writeup proposes a new evaluation method based on global phase fitting (GPF) for analyzing the continuous phase development of the He-Xe comagnetometer signal. The Cramer-Rao Lower Bound on the Xe EDM for the GPF method is theoretically derived and shows the benefit of achieving high statistical sensitivity without bringing new systematic uncertainties. The robustness of the GPF method is verified with Monte-Carlo studies. By optimizing the analysis parameters and adding few more data that could not be analyzed with the former method, a result of \[ { d_\mathrm{A} (^{129}\mathrm{Xe})=(1.1 \pm 3.6_\mathrm{(stat)} \pm 2.0_\mathrm{(syst)})\times 10 ^{-28} e~\mathrm{cm}}, \] is obtained and is used to derive the upper limit of Xe permanent EDM at 95\% C.L. \[ {|d_\text{A}(^{129}\text{Xe})| < 8.3 \times 10^{-28}~e~\mathrm{cm}}. \] This limit is a factor of 1.7 smaller as compared to the previous result.
This writeup aims for providing supplemental information for interested readers of the paper published at arXiv:2008.07975. This writeup is a translated excerpt of the author's doctoral thesis in Chinese entitled "Research on realization and application of \textmu T-level magnetic fields of high homogeneity inside magnetically shielded rooms", which is not available yet