English

A precision measurement of the electron's electric dipole moment using trapped molecular ions

Atomic Physics 2017-10-18 v1 High Energy Physics - Experiment

Abstract

We describe the first precision measurement of the electron's electric dipole moment (eEDM, ded_e) using trapped molecular ions, demonstrating the application of spin interrogation times over 700 ms to achieve high sensitivity and stringent rejection of systematic errors. Through electron spin resonance spectroscopy on 180Hf19F+^{180}{\rm Hf}^{19}{\rm F}^{+} in its metastable 3Δ1^{3}\Delta_{1} electronic state, we obtain de=(0.9±7.7stat±1.7syst)×1029ecmd_e = (0.9 \pm 7.7_{\rm stat} \pm 1.7_{\rm syst}) \times 10^{-29}\,e\,{\rm cm}, resulting in an upper bound of de<1.3×1028ecm|d_e| < 1.3 \times 10^{-28}\,e\,{\rm cm} (90% confidence). Our result provides independent confirmation of the current upper bound of de<9.3×1029ecm|d_e| < 9.3 \times 10^{-29}\,e\,{\rm cm} [J. Baron et al.\textit{et al.}, Science 343\textbf{343}, 269 (2014)], and offers the potential to improve on this limit in the near future.

Keywords

Cite

@article{arxiv.1704.07928,
  title  = {A precision measurement of the electron's electric dipole moment using trapped molecular ions},
  author = {William B. Cairncross and Daniel N. Gresh and Matt Grau and Kevin C. Cossel and Tanya S. Roussy and Yiqi Ni and Yan Zhou and Jun Ye and Eric A. Cornell},
  journal= {arXiv preprint arXiv:1704.07928},
  year   = {2017}
}