Measurement of the molecular dipole moment and the hyperfine and -doublet splittings of the B31 state of thallium fluoride

Abstract

We report high-precision measurements on the thallium fluoride J = 1 hyperfine manifold of the B31 ( = 0) state. This state is of special interest because it is central to an optical cycling scheme that is envisioned to play an important role in enhancing the sensitivity of the CeNTREX nuclear Schiff-moment experiment presently under construction. The measurements are made by monitoring the fluorescence induced by narrow-band laser excitation of a cryogenic molecular beam. We use a multipass arrangement of the laser beam to enhance fluorescence. When viewed with a camera, we can spatially resolve images from adjacent passes that approach the molecules from opposing directions. These images yield a sensitive visual method to identify the central frequency of a transition. Coupling these line-center determinations with frequency calibration from an acousto-optic modulator has allowed a more precise determination of the J = 1 manifold of hyperfine level splittings. We observe Stark shifts of the J = 1 levels and infer a permanent electric dipole moment of 2.28(7) D and -doublet splittings for the F1' = 1/2 and F1' = 3/2 manifolds of 14.4(9) MHz and 17.4(11) MHz, respectively.

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