English

Stimulated-Raman-Scattering Metrology

Optics 2023-04-13 v1 Instrumentation and Detectors

Abstract

Frequency combs have revolutionized optical frequency metrology, allowing one to determine highly accurate transition frequencies of a wealth of molecular species. Despite a recognized scientific interest, these progresses have only marginally benefited infrared-inactive transitions, due to their inherently weak cross-sections. Here we overcome this limitation by introducing stimulated-Raman-scattering metrology, where a frequency comb is exploited to calibrate the frequency detuning between the pump and Stokes excitation lasers. We apply this approach to molecular hydrogen to test quantum electrodynamics. We measure the transition frequency of the Q(1) fundamental line of H2_2 around 4155 cm1^{-1} with few parts-per-billion uncertainty, which is comparable to the theoretical benchmark of ab initio calculations and more than a decade better than the experimental state of the art. Our comb-calibrated stimulated Raman scattering spectrometer extends the toolkit of optical frequency metrology as it can be applied, with simple technical changes, to many other infrared-inactive transitions, over a 50-5000 cm1^{-1} range that covers also purely rotational bands.

Keywords

Cite

@article{arxiv.2207.03998,
  title  = {Stimulated-Raman-Scattering Metrology},
  author = {M. Lamperti and L. Rutkowski and D. Ronchetti and D. Gatti and R. Gotti and G. Cerullo and F. Thibault and H. Jóźwiak and S. Wójtewicz and P. Masłowski and P. Wcisło and D. Polli and M. Marangoni},
  journal= {arXiv preprint arXiv:2207.03998},
  year   = {2023}
}
R2 v1 2026-06-25T00:45:46.630Z