Improving signal-to-noise ratios in pump-probe spectroscopy on light-sensitive samples by adapting pulse repetition rates
Matthias C. Velsink, Maksym Illienko, Komal Chaudhary, Stefan Witte

TL;DR
This paper presents a method to optimize the signal-to-noise ratio in ultrafast pump-probe spectroscopy by adapting pulse repetition rates, balancing signal strength and sample damage across various materials.
Contribution
It introduces a systematic approach to optimize pump-probe experimental parameters, including repetition rate, to enhance SNR while minimizing sample damage.
Findings
Optimal parameters depend on material properties.
Repetition rate adjustment improves SNR.
Strategies reduce sample damage during measurements.
Abstract
Ultrafast optical pump-probe spectroscopy is a powerful tool to study dynamics in solid materials on femto- and picosecond timescales. In such experiments, a pump pulse induces dynamics inside a sample by impulsive light-matter interaction, resulting in dynamics that can be detected using a time-delayed probe pulse. In addition to the desired dynamics, the initial interaction may also lead to unwanted effects that may result in irreversible changes and even damage. Therefore, the achievable signal strength is often limited by the pumping conditions that a sample can sustain. Here we investigate the optimization of ultrafast photoacoustics in various solid thin films. We perform systematic experiments aimed at maximizing the achievable signal-to-noise (SNR) ratio in a given measurement time while limiting sample damage. By varying pump and probe pulse energies, average pump fluence, and…
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Taxonomy
TopicsAnalytical Chemistry and Sensors · Spectroscopy and Chemometric Analyses · Spectroscopy Techniques in Biomedical and Chemical Research
