English

Alkali-vapor magnetic resonance driven by fictitious radiofrequency fields

Atomic Physics 2014-09-29 v2

Abstract

We demonstrate an all-optical 133^{133}Cs scalar magnetometer, operating in nonzero magnetic field,in which the magnetic resonance is driven by an effective oscillating magnetic field provided by the AC Stark shift of an intensity-modulated laser beam. We achieve a projected shot-noise-limited sensitivity of 1.7 fT/Hz1/2^{1/2} and measure a technical noise floor of 40 fT/Hz1/2^{1/2}. These results are essentially identical to a coil-driven scalar magnetometer using the same setup. This all-optical scheme offers advantages over traditional coil-driven magnetometers for use in arrays and in magnetically sensitive fundamental physics experiments e.g., searches for a permanent electric dipole moment of the neutron.

Keywords

Cite

@article{arxiv.1409.6158,
  title  = {Alkali-vapor magnetic resonance driven by fictitious radiofrequency fields},
  author = {Elena Zhivun and Arne Wickenbrock and Brian Patton and Dmitry Budker},
  journal= {arXiv preprint arXiv:1409.6158},
  year   = {2014}
}

Comments

Dedicated to Professor William Happer on the occasion of his 75th birthday