paper

Few-photon single ionization of cold rubidium in the over-the-barrier regime

arXiv:2302.00124 · doi:10.1103/PhysRevA.107.033114

Abstract

Photoionization of the rubidium (Rb) atoms cooled in a magneto-optical trap, characterized by the coexistence of the ground 5 and the excited 5 states, is investigated experimentally and theoretically with the 400 nm femtosecond laser pulses at intensities of W/cm - W/cm. Recoil-ion momentum distribution (RIMD) of Rb exhibits rich ring-like structures and their energies correspond to one-photon ionization of the 5 state, two-photon and three-photon ionizations of the 5 state, respectively. With the increasing of , we find that experimental signals near zero-momentum (NZM) in RIMDs resulted from the 5 state enhance dramatically and its peaked Rb momenta dwindle obviously while that from the 5 state is maintained. Meanwhile, the ion-yield ratio of the 5 over the 5 states varies from to as increases. These features indicate a transition from perturbative ionization to strong-perturbative ionization for the 5 state. Numerical simulations by solving the time-dependent Schrödinger equation (TDSE) can qualitatively explain the measurements of RIMD, photoion angular distributions, as well as ion-yield ratio. However, some discrepancies still exist, especially for the NZM dip, which could stem from the electron-electron correlation that is neglected in the present TDSE simulations since we have adopted the single-active-electron approximation.

References in corpus (2)

Few-photon single ionization of cold rubidium in the over-the-barrier regime · wovepaper