Room temperature detection of the (H2)2 dimer

Fuente: arXiv
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Autori principali: Fleurbaey, H., Kassi, S., Campargue, A.
Natura: Preprint
Pubblicazione: 2024
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author Fleurbaey, H.
Kassi, S.
Campargue, A.
author_facet Fleurbaey, H.
Kassi, S.
Campargue, A.
contents The hydrogen dimer, (H2)2, is among the most weakly bound van der Waals complexes and a prototype species for first principles ab initio studies. The detection of the (H2)2 infrared absorption spectrum was reported more than thirty years ago at a temperature of 20 K. Due to the sharp decrease of the (H2)2 abundance with temperature, a detection at room temperature was generally considered as hardly achievable. Here we report the first room temperature detection of partly resolved rotational structures of (H2)2 by cavity ring down spectroscopy at sub-atmospheric pressures, in the region of the first overtone band of H2 near 1.2 micron. The quantitative analysis of the absorption features observed around ten allowed or forbidden transition frequencies of the monomer provides insight on the structure of this elusive species and a benchmark for future theoretical studies.
format Preprint
id arxiv_https___arxiv_org_abs_2407_18366
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Room temperature detection of the (H2)2 dimer
Fleurbaey, H.
Kassi, S.
Campargue, A.
Chemical Physics
Materials Science
The hydrogen dimer, (H2)2, is among the most weakly bound van der Waals complexes and a prototype species for first principles ab initio studies. The detection of the (H2)2 infrared absorption spectrum was reported more than thirty years ago at a temperature of 20 K. Due to the sharp decrease of the (H2)2 abundance with temperature, a detection at room temperature was generally considered as hardly achievable. Here we report the first room temperature detection of partly resolved rotational structures of (H2)2 by cavity ring down spectroscopy at sub-atmospheric pressures, in the region of the first overtone band of H2 near 1.2 micron. The quantitative analysis of the absorption features observed around ten allowed or forbidden transition frequencies of the monomer provides insight on the structure of this elusive species and a benchmark for future theoretical studies.
title Room temperature detection of the (H2)2 dimer
topic Chemical Physics
Materials Science
url https://arxiv.org/abs/2407.18366