Characterization of high-temperature performance of cesium vapor cells with anti-relaxation coating
arXiv:1609.04867 · doi:10.1063/1.4976017
Abstract
Vapor cells with antirelaxation coating are widely used in modern atomic physics experiments due to the coating's ability to maintain the atoms' spin polarization during wall collisions. We characterize the performance of vapor cells with different coating materials by measuring longitudinal spin relaxation and vapor density at temperatures up to 95°C. We found that the spin-projection-noise-limited sensitivity for atomic magnetometers with such cells improves with temperature, which demonstrates the potential of antirelaxation coated cells in applications of future high-sensitivity magnetometers.
References in corpus (5)
- Experimental demonstration of quantum memory for light
- Influence of magnetic-field inhomogeneity on nonlinear magneto-optical resonances
- Investigation of Anti-Relaxation Coatings for Alkali-Metal Vapor Cells Using Surface Science Techniques
- Controlling atomic vapor density in paraffin-coated cells using light-induced atomic desorption
- Off resonance laser frequency stabilization using the Faraday effect