Optical pumping of Rb in the presence of high-pressureHe3buffer gas

Abstract
A cryogenic technique has been used to produce polarized He3 targets of up to relative density p=12 atm (≊3×1020 He3 atoms/cm3; p=1 atm corresponds to 760 Torr or 101.3 kPa pressure at 273 K). In these targets He3 nuclei are polarized by spin-exchange collisions with optically pumped rubidium atoms. From transmission measurements at wavelengths of 790–800 nm, we have determined pressure shifts, linewidths, and line-shape asymmetries for the Rb 5S1/2→5P1/2 D1 transition. The Rb spin-destruction rate was found to exhibit a quadratic increase versus He3 pressure, which indicates the importance of Rb3He3He collision processes. The transmission results for circularly polarized light are well described by a model that predicts the dependence of the average Rb polarization on Rb density, He3 pressure, light intensity, and cell geometry. The Rb3He spin-exchange cross section, 〈σSEv〉=6.1×1020 cm3 s1, was found to be independent of He3 pressure up to p=12.1 atm. Maximum He3 polarizations of 72–79% were observed with cells of 17 cm3 volume that contained He3 at p=6–9 atm.

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