arXiv · 2006.02694
Rotational coherence spectroscopy of molecules in helium nanodroplets: Reconciling the time and the frequency domains
Abstract
Alignment of OCS, CS$_2$ and I$_2$ molecules embedded in helium nanodroplets is measured as a function of time following rotational excitation by a non-resonant, comparatively weak ps laser pulse. The distinct peaks in the power spectra, obtained by Fourier analysis, are used to determine the rotational, B, and centrifugal distortion, D, constants. For OCS, B and D match the values known from IR spectroscopy. For CS$_2$ and I$_2$, they are the first experimental results reported. The alignment dynamics calculated from the gas-phase rotational Schr\"{o}dinger equation, using the experimental in-droplet B and D values, agree in detail with the measurement for all three molecules. The rotational spectroscopy technique for molecules in helium droplets introduced here should apply to a range of molecules and complexes.
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Adam S. Chatterley, Lars Christiansen, Constant A. Schouder, Anders V. Jørgensen, Benjamin Shepperson, Igor N. Cherepanov, Giacomo Bighin, Robert E. Zillich, Mikhail Lemeshko, Henrik Stapelfeldt. 2020-06-04. Rotational coherence spectroscopy of molecules in helium nanodroplets: Reconciling the time and the frequency domains. https://doi.org/10.1103/physrevlett.125.013001
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