Spin polarization of 87Rb atoms with ultranarrow linewidth diode laser: Numerical simulation
Author(s) -
Ziteng Wang,
Q. Y. Jiang,
Xiang Zhan,
Y. D. Chen,
Hui Luo
Publication year - 2016
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4961375
Subject(s) - laser linewidth , hyperfine structure , laser , buffer gas , diode , materials science , optics , laser pumping , frequency modulation , optical pumping , laser power scaling , distributed feedback laser , polarization (electrochemistry) , tunable diode laser absorption spectroscopy , atomic physics , optoelectronics , chemistry , physics , radio frequency , telecommunications , computer science
In order to polarize 87Rb vapor effectively with ultranarrow linewidth diode laser, we studied the polarization as a function of some parameters including buffer gas pressure and laser power. Moreover, we also discussed the methods which split or modulate the diode laser frequency so as to pump the two ground hyperfine levels efficiently. We obtained some useful results through numerical simulation. If the buffer gas pressure is so high that the hyperfine structure is unresolved, the polarization is insensitive to laser frequency at peak absorption point so frequency splitting and frequency modulation methods do not show improvement. At low pressure and laser power large enough, where the hyperfine structure is clearly resolved, frequency splitting and frequency modulation methods can increase polarization effectively. For laser diodes, frequency modulation is easily realized with current modulation, so this method is attractive since it does not add any other components in the pumping laser system
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