Thermo-electron accumulation in light and heavy water during MHz-burst laser ablation
Denys Moskal, Jiri Martan, Vladislav Lang, Milan Honner

TL;DR
This study compares plasma glow and thermal effects in light and heavy water during ultrashort laser ablation, revealing thermo-electron accumulation effects and introducing burst laser ablation in heavy water for the first time.
Contribution
It presents the first application of burst laser ablation in heavy water and analyzes thermo-electron accumulation effects during ultrashort laser pulses.
Findings
Burst mode in heavy water produces the most intense plasma glow with 1 ps pulses.
Lower initial power density results in higher plasma glow than higher density.
Thermo-electron accumulation enhances pulse-to-pulse plasma glow in burst mode.
Abstract
Laser-induced water ablation triggers various physical effects, including atom ionization, optical breakdown of the liquid, phase explosion, cavitation, and shockwave propagation. These effects can be further amplified in heavy water by deuterium-deuterium fusion reactions, which require extremely high energy levels. Laser pulses can be grouped in bursts to achieve the necessary energy within the ablation plasma plume. This study aims to compare the ablation plasma glow and thermal effects in light and heavy water under both single-pulse and burst-mode ultrashort laser irradiation. Notably, this research introduces the novel application of burst laser ablation in heavy water for the first time. The ablation was conducted beneath the water surface along a circular, laser-scanned trajectory, with two distinct ablation regimes: burst mode and single-pulse mode, utilizing lenses with…
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Taxonomy
TopicsLaser-induced spectroscopy and plasma · Laser-Ablation Synthesis of Nanoparticles · Astro and Planetary Science
