In-situ measurement of vacuum window birefringence by atomic spectroscopy
arXiv:1308.4959 · doi:10.1063/1.4847075
Abstract
We present an in-situ method to measure the birefringence of a single vacuum window by means of microwave spectroscopy on an ensemble of cold atoms. Stress-induced birefringence can cause an ellipticity in the polarization of an initially linearly-polarized laser beam. The amount of ellipticity can be reconstructed by measuring the differential vector light shift of an atomic hyperfine transition. Measuring the ellipticity as a function of the linear polarization angle allows us to infer the amount of birefringence at the level of and identify the orientation of the optical axes. The key benefit of this method is the ability to separately characterize each vacuum window, allowing the birefringence to be precisely compensated in existing vacuum apparatuses.
3 pages, 2 figures; in the new version, corrected the range of typical values of induced birefringence
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Cited by in corpus (13)
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