English

Ultra-resolution photochemical sensing

Optics 2025-01-14 v1

Abstract

Photochemistry in the earth's atmosphere is driven by the sun, continuously altering the concentration and spatial distribution of pollutants. Precisely monitoring their atmospheric abundance relies predominantly on optical sensing, which requires the knowledge of exact absorption cross sections. One key pollutant which impacts many photochemical reaction-pathways is formaldehyde. Agreement on formaldehyde absolute absorption cross section remains elusive in the photochemically-relevant ultraviolet spectral region, hampering sensitive concentration tracking. Here, we introduce free-running ultraviolet dual comb spectroscopy, combining high spectral resolution (1 GHz), broad spectral coverage (12 THz), and fast acquisition speed (500 ms), as a novel method for absolute absorption cross section determination with unprecedented fidelity. Within this bandwidth, our method uncovers almost one order of magnitude more rovibrational transitions than detected before which leads to refined rotational constants for high-level quantum simulations of molecular eigenstates. This ultra-resolution method can be generalized to provide a universal tool for fast electronic fingerprinting of atmospherically-relevant species, both for sensing applications and to benchmark improvements of ab-initio quantum theory.

Keywords

Cite

@article{arxiv.2501.07350,
  title  = {Ultra-resolution photochemical sensing},
  author = {Lukas Fuerst and Alexander Eber and Mithun Pal and Emily Hruska and Clemens Hofmann and Iouli Gordon and Martin Schultze and Rolf Breinbauer and Birgitta Bernhardt},
  journal= {arXiv preprint arXiv:2501.07350},
  year   = {2025}
}

Comments

19 pages, 8 figures, 1 table

R2 v1 2026-06-28T21:04:40.750Z