Triple-Resonance Spectroscopy Using a Cavity-Enhanced Frequency Comb Probe
Abstract
Accurate experimentally verified models of molecular hot-band transitions are essential for interpreting high-temperature spectra in environments ranging from exoplanetary atmospheres to combustion systems. However, line-resolved measurements of infrared hot-band transitions reaching highly excited vibrational states above 10000 cm are missing because these transitions are too weak to observe at room temperature and become spectrally congested at elevated temperatures. Here, we introduce a nonlinear spectroscopic approach that enables simultaneous measurement of individual infrared hot-band transitions between four vibrational bands up to 12000 cm over a broad spectral range with sub-Doppler resolution and sub-MHz frequency accuracy (10 relative line position accuracy). The methods is based on an all-optical triple-resonance (AOTR) scheme that combines stepwise mid-infrared pumping using an optical-frequency-comb-stabilized, double-seeded continuous-wave optical parametric oscillator with broadband highly sensitive near-infrared probing using a cavity-enhanced optical frequency comb. As a proof of principle, we measure transitions between high polyads (P) of methane - groups of strongly interacting, near-degenerate vibrational energy states arising from couplings between the C-H stretching and bending modes. In a single probe spectrum, we simultaneously resolve sub-Doppler P4P0, P6P2 and P8P4 transitions, reaching the poorly understood polyad P8 near 12000 cm and providing the first set of 41 experimentally observed lines in the P8P4 spectral region.Comb-based AOTR spectroscopy opens a new route for broadband exploration of highly excited molecular states, delivering extensive high-accuracy spectroscopic data needed to refine molecular models and improve predictions of high-temperature spectra.
Cite
@article{arxiv.2607.15793,
title = {Triple-Resonance Spectroscopy Using a Cavity-Enhanced Frequency Comb Probe},
author = {Qinxue Nie and Vinicius Silva de Oliveira and Adrian Hjältén and Isak Silander and Kevin K. Lehmann and Aleksandra Foltynowicz},
journal= {arXiv preprint arXiv:2607.15793},
year = {2026}
}