English

Enhanced nuclear spin dependent parity violation effects using the 199HgH molecule

Atomic Physics 2018-08-22 v1 Nuclear Theory

Abstract

Electron interactions with the nuclear-spin-dependent (NSD) parity non-conserving (PNC) anapole moment are strongly enhanced within heteronuclear diatomic molecules. A novel, low-energy optical rotation experiment is being proposed with the aim of observing NSD PNC interactions in HgH. Based on the relativistic coupled cluster method we present a complete calculation of the circular polarization parameter P=2Im(E1PNC)/M13×106  κP = 2\,\textrm{Im}(E1_{PNC})/M1 \approx 3 \times 10^{-6}\; \kappa for the 2Σ1/22Π1/2^2\Sigma_{1/2} \to ^2\Pi_{1/2} optical transition of HgH, where κ\kappa is a dimensionless constant determined by the nuclear anapole moment. This provides an improvement in sensitivity to NSD PNC by 2 -- 3 orders of magnitude over the leading atomic Xe, Hg, Tl, Pb and Bi optical rotation experiments, and shows that the proposed measurement will be sensitive enough to extract the 199^{199}Hg anapole moment and shed light on the underlying theory of hadronic parity violation.

Keywords

Cite

@article{arxiv.1804.05475,
  title  = {Enhanced nuclear spin dependent parity violation effects using the 199HgH molecule},
  author = {A. J. Geddes and L. V. Skripnikov and A. Borschevsky and J. C. Berengut and V. V. Flambaum and T. P. Rakitzis},
  journal= {arXiv preprint arXiv:1804.05475},
  year   = {2018}
}
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