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Probing molecules in gas cells of subwavelength thickness with high frequency resolution

Atomic Physics 2024-03-07 v1 Optics Quantum Physics

Abstract

Miniaturizing and integrating atomic vapor cells is widely investigated for the purposes of fundamental measurements and technological applications such as quantum sensing. Extending such platforms to the realm of molecular physics is a fascinating prospect that paves the way for compact frequency metrology as well as for exploring light-matter interactions with complex quantum objects. Here, we perform molecular rovibrational spectroscopy in a thin-cell of micrometric thickness, comparable to excitation wavelengths. We operate the cell in two distinct regions of the electromagnetic spectrum, probing ν1\nu_1+ν3\nu_3 resonances of acetylene at 1.530μ\mum, within the telecommunications wavelength range, as well as the ν3\nu_3 and ν2\nu_2 resonances of SF6SF_6 and NH3NH_3 respectively, in the mid-infrared fingerprint region around 10.55μ\mum. Thin-cell confinement allows linear sub-Doppler transmission spectroscopy due to the coherent Dicke narrowing effect, here demonstrated for molecular rovibrations. Our experiment can find applications extending to the fields of compact molecular frequency references, atmospheric physics or fundamental precision measurements.

Keywords

Cite

@article{arxiv.2403.03604,
  title  = {Probing molecules in gas cells of subwavelength thickness with high frequency resolution},
  author = {Guadalupe Garcia Arellano and Joao Carlos de Aquino Carvalho and Hippolyte Mouhanna and Esther Butery and Thierry Billeton and Frederic Du-Burck and Benoît Darquié and Isabelle Maurin and Athanasios Laliotis},
  journal= {arXiv preprint arXiv:2403.03604},
  year   = {2024}
}

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published in Nature Communications