English

Second-Scale Coherence Measured at the Quantum Projection Noise Limit with Hundreds of Molecular Ions

Atomic Physics 2020-02-11 v3 Chemical Physics

Abstract

Cold molecules provide an excellent platform for quantum information, cold chemistry, and precision measurement. Certain molecules have enhanced sensitivity to beyond Standard Model physics, such as the electron's electric dipole moment (eeEDM). Molecular ions are easily trappable and are therefore particularly attractive for precision measurements where sensitivity scales with interrogation time. Here, we demonstrate a spin precession measurement with second-scale coherence at the quantum projection noise (QPN) limit with hundreds of trapped molecular ions, chosen for their sensitivity to the eeEDM rather than their amenability to state control and readout. Orientation-resolved resonant photodissociation allows us to simultaneously measure two quantum states with opposite eeEDM sensitivity, reaching the QPN limit and fully exploiting the high count rate and long coherence.

Keywords

Cite

@article{arxiv.1907.03413,
  title  = {Second-Scale Coherence Measured at the Quantum Projection Noise Limit with Hundreds of Molecular Ions},
  author = {Yan Zhou and Yuval Shagam and William B. Cairncross and Kia Boon Ng and Tanya S. Roussy and Tanner Grogan and Kevin Boyce and Antonio Vigil and Madeline Pettine and Tanya Zelevinsky and Jun Ye and Eric A. Cornell},
  journal= {arXiv preprint arXiv:1907.03413},
  year   = {2020}
}

Comments

8 pages, 5 figures