Electromagnetically Induced Transparency versus Nonlinear Faraday Effect. Coherent Control of the Light Beam Polarization
arXiv:0906.0571 · doi:10.1103/PhysRevA.80.033815
Abstract
We report on experimental and theoretical study of the nonlinear Faraday effect under conditions of electromagnetically induced transparency at the 5 two-photon transition in rubidium vapors. These transitions realize the inverted Y model which combines the and ladder systems. Strong nonlinearity allowing for large rotation angles of a probe beam tuned to the transition was obtained by creation of quantum superpositions of magnetic sublevels (Zeeman coherences) in the rubidium ground state ( scheme). Additionally, electromagnetically induced transparency was accomplished in a ladder scheme by acting with an additional strong coupling laser on the transition. Under conditions of a two-photon resonance the rotation was significantly reduced, which is interpreted as a competition between the two processes. The effect was observed in sub-Gauss magnetic fields and could be used for efficient coherent control of generation of the ground-state coherences, e.g. for controlling the polarization state of the probe light.
7 pages, 12 figures, submitted to Phys. Rev. A
References in corpus (1)
Cited by in corpus (7)
- Nonlinear Faraday Rotation and Superposition-State Detection in Cold Atoms
- Induced transparency: interference or polarization?
- Interacting double dark resonances in a hot atomic vapor of helium
- Magneto-optical polarization rotation in a ladder-type atomic system for tunable offset locking
- Atomic-state diagnostics and optimization in cold-atom experiments
- Optically controlled waveplate at a telecom wavelength using a ladder transition in Rb atoms for all-optical switching and high speed Stokesmetric Imaging
- Polarization-rotation resonances with subnatural widths using a control laser