In-situ measurement of light polarization with ellipticity-induced nonlinear magneto-optical rotation
arXiv:1706.08149 · doi:10.1103/PhysRevA.96.033823
Abstract
A precise, accurate, and relatively straightforward in-situ method to measure and control the ellipticity of light resonantly interacting with an atomic vapor is described. The technique can be used to minimize vector light shifts. The method involves measurement of ellipticity-induced resonances in the magnetic-field dependence of nonlinear magneto-optical rotation of frequency-modulated light. The light propagation direction is orthogonal to the applied magnetic field and the major axis of the light polarization ellipse is along . When the light modulation frequency matches the Larmor frequency, elliptically polarized light produces precessing atomic spin orientation transverse to via synchronous optical pumping. The precessing spin orientation causes optical rotation oscillating at the Larmor frequency by modulating the atomic vapor's circular birefringence. Based on this technique's precision, in-situ nature (which avoids systematic errors arising from optical interfaces), and independent control of the most important systematic errors, it is shown that the accuracy of light ellipticity measurements achievable with this technique can exceed that of existing methods by orders of magnitude.
8 pages, 6 figures
References in corpus (9)
- Improved limit on the permanent electric dipole moment of 199Hg
- New limit on Lorentz and CPT-violating neutron spin interactions
- High-Resolution Magnetometry with a Spinor Bose-Einstein Condensate
- Magneto-optical rotation and cross-phase modulation via coherently driven tripod atoms
- All-Optical Vector Atomic Magnetometer
- Magnetometry Based on Nonlinear Magneto-Optical Rotation with Amplitude-Modulated Light
- Nonlinear magneto-optical rotation with modulated light in tilted magnetic fields
- Magnetometric sensitivity optimization for nonlinear optical rotation with frequency-modulated light: rubidium D2 line
- Measurement and extinction of vector light shifts using interferometry of spinor condensates