Laser excitation of the 1s-hyperfine transition in muonic hydrogen
P. Amaro, A. Adamczak, M. Abdou Ahmed, L. Affolter, F. D. Amaro, P., Carvalho, T.-L. Chen, L. M. P. Fernandes, M. Ferro, D. Goeldi, T. Graf, M., Guerra, T. W. H\"ansch, C. A. O. Henriques, Y.-C. Huang, P. Indelicato, O., Kara, K. Kirch, A. Knecht, F. Kottmann, Y.-W. Liu

TL;DR
This paper calculates the probability of laser-induced hyperfine transitions in muonic hydrogen, accounting for collisions and decoherence, to optimize experimental conditions for precise hyperfine splitting measurements.
Contribution
It provides a detailed theoretical model including collisions and decoherence effects to guide laser system design for muonic hydrogen hyperfine measurements.
Findings
Calculated the combined transition probability considering collisions and decoherence.
Identified the overestimation risk if decoherence effects are neglected.
Provided parameters like matrix element and collision rates for experimental optimization.
Abstract
The CREMA collaboration is pursuing a measurement of the ground-state hyperfine splitting (HFS) in muonic hydrogen (p) with 1 ppm accuracy by means of pulsed laser spectroscopy to determine the two-photon-exchange contribution with relative accuracy. In the proposed experiment, the p atom undergoes a laser excitation from the singlet hyperfine state to the triplet hyperfine state, {then} is quenched back to the singlet state by an inelastic collision with a H molecule. The resulting increase of kinetic energy after the collisional deexcitation is used as a signature of a successful laser transition between hyperfine states. In this paper, we calculate the combined probability that a p atom initially in the singlet hyperfine state undergoes a laser excitation to the triplet state followed by a collisional-induced deexcitation back to the singlet state.…
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