English

Nonlinear Zeeman effect, line shapes and optical pumping in electromagnetically induced transparency

Atomic Physics 2017-06-01 v2

Abstract

We perform Zeeman spectroscopy on a Rydberg electromagnetically induced transparency (EIT) system in a room-temperature Cs vapor cell, in magnetic fields up to 50~Gauss and for several polarization configurations. The magnetic interactions of the 6S1/2,Fg=4\vert 6S_{1/2}, F_g=4 \rangle ground, 6P3/2,Fe=5\vert 6P_{3/2}, F_e=5 \rangle intermediate, and 33S1/2\vert 33S_{1/2} \rangle Rydberg states that form the ladder-type EIT system are in the linear Zeeman, quadratic Zeeman, and the deep hyperfine Paschen-Back regimes, respectively. Starting in magnetic fields of about 5~Gauss, the spectra develop an asymmetry that becomes paramount in fields 40\gtrsim40~Gauss. We use a quantum Monte Carlo wave-function approach to quantitatively model the spectra. Simulated spectra are in good agreement with experimental data. The asymmetry in the spectra is, in part, due to level shifts caused by the quadratic Zeeman effect, but it also reflects the complicated interplay between optical pumping and EIT in the magnetic field. Relevance to measurement applications is discussed. %The simulations are also used to study optical pumping in the magnetic field and to investigate the interplay between optical pumping and EIT, which reduces photon scattering and optical pumping.

Keywords

Cite

@article{arxiv.1702.04842,
  title  = {Nonlinear Zeeman effect, line shapes and optical pumping in electromagnetically induced transparency},
  author = {Linjie Zhang and Shanxia Bao and Hao Zhang and Georg Raithel and Jianming Zhao and Liantuan Xiao and Suotang Jia},
  journal= {arXiv preprint arXiv:1702.04842},
  year   = {2017}
}
R2 v1 2026-06-22T18:19:51.260Z