English

Sub-Doppler optical-optical double-resonance spectroscopy using a cavity-enhanced frequency comb probe

Chemical Physics 2024-08-22 v3

Abstract

Accurate parameters of molecular hot-band transitions, i.e., those starting from vibrationally excited levels, are needed to accurately model high-temperature spectra in astrophysics and combustion, yet laboratory spectra measured at high temperatures are often unresolved and difficult to assign. Optical-optical double-resonance (OODR) spectroscopy allows the measurement and assignment of individual hot-band transitions from selectively pumped energy levels without the need to heat the sample. However, previous demonstrations lacked either sufficient resolution, spectral coverage, absorption sensitivity, or frequency accuracy. Here we demonstrate OODR spectroscopy using a cavity-enhanced frequency comb probe that combines all these advantages. We detect and assign sub-Doppler transitions in the spectral range of the 3ν{\nu}3{_3}{\leftarrow}ν{\nu}3{_3} resonance of methane with frequency precision and sensitivity more than an order of magnitude better than before. This technique will provide high-accuracy data about excited states of a wide range of molecules that is urgently needed for theoretical modeling of high-temperature data and cannot be obtained using other methods.

Keywords

Cite

@article{arxiv.2307.03256,
  title  = {Sub-Doppler optical-optical double-resonance spectroscopy using a cavity-enhanced frequency comb probe},
  author = {Vinicius Silva de Oliveira and Isak Silander and Lucile Rutkowski and Grzegorz Soboń and Ove Axner and Kevin K. Lehmann and Aleksandra Foltynowicz},
  journal= {arXiv preprint arXiv:2307.03256},
  year   = {2024}
}

Comments

Addendum added on Aug 20, 2024, containing comparison of experimental line positions and intensities to new predictions from an effective Hamiltonian and the ExoMol database

R2 v1 2026-06-28T11:24:04.194Z