Picosecond two-photon absorption laser induced fluorescence (ps-TALIF) in krypton: the role of photoionization on the density depletion of the fluorescing state Kr 5p'[3/2]$_2$
K. Gazeli (LSPM), X Aubert (LSPM), S Prasanna (LSPM), C. Duluard, (LSPM), G. Lombardi (LSPM), K. Hassouni (LSPM)

TL;DR
This study investigates the effects of photoionization and stimulated emission on krypton state depletion during picosecond two-photon absorption laser-induced fluorescence, providing insights for accurate density measurements in plasma applications.
Contribution
It offers the first detailed analysis of photoionization's role in krypton ps-TALIF, enhancing calibration methods and understanding of state depletion mechanisms.
Findings
PIN causes saturation and broadening of the absorption line at high laser intensities.
Narrower lines and quadratic signal dependence occur at low intensities, enabling calibration.
Results support improved absolute density and quenching coefficient measurements in plasma diagnostics.
Abstract
The present study focuses on the application of a picosecond (ps) TALIF technique in krypton (Kr) at variable pressure (0.1-10 mbar). The laser intensity (I, units W.cm) is tuned between 1 and 480 MW.cm, and the depletion of the density of the Kr 5p'[3/2] fluorescing state through photoionization (PIN) and amplified stimulated emission (ASE) is investigated. This is done by combining TALIF experiments with a simple 0D numerical model. We demonstrate that for a gas pressure of 3 mbar and 15 < 480 MW.cm, a saturated fluorescence signal is obtained, which is largely attributed to PIN, ASE being negligible. Also, a broadening of the two-photon absorption line (i.e. 4p S05p'[3/2]) is recorded due to the production of charged species through PIN, inducing a Stark effect. For I15 MW.cm, though, PIN is significantly limited, the…
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