Adiabatic passage of TlF with microwaves in a cryogenic beam
arXiv:2511.16626
Abstract
We present a hyperfine-resolved state preparation scheme for thallium fluoride (TlF) molecules based on microwave-driven adiabatic passage (AP) in a spatially varying electric field. This method enables efficient and robust population transfer between selected hyperfine sublevels of the ground state in a cryogenic molecular beam, a key requirement for the CeNTREX search for nuclear time-reversal symmetry violation. Two sequential stages of AP are implemented. The first transfers population from to at a local field of , and the second transfers from to at . Transfer efficiencies are quantified through laser-induced fluorescence, and accounting for residual population in excited rotational levels after a prior stage of rotational cooling. We achieve state transfer efficiencies of and for the first and second states of AP, respectively. This corresponds to a total efficiency of for population transfer from to . These results demonstrate robust and high-fidelity preparation of specific rotational/hyperfine states in TlF.
10 pages, 7 figures