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Millimeter- and submillimeter-wave spectrum of C17O. Rotational hyperfine structure analyzed using the Lamb-dip technique

G. Cazzoli, Luca Dore, Cristina Puzzarini, Sabina Beninati

Open publisher page 52 citations

Abstract

The pure rotational spectrum of C17O has been observed in the millimeter- and submillimeter-wave region using the Lamb-dip technique in order to increase the instrumental resolving power and so to analyze the hyperfine structure of the rotational transitions. The accuracy of the measurements have been evaluated to lie within ±1 kHz. Under these conditions, it has been possible to obtain very accurate values of the B0 and D0 spectroscopic constants and of the 17O nuclear electric quadrupole coupling and spin–rotation constants.

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What this paper is about

The pure rotational spectrum of C17O has been observed in the millimeter- and submillimeter-wave region using the Lamb-dip technique in order to increase the instrumental resolving power and so to analyze the hyperfine structure of the rotational transitions. The accuracy of the measurements have been evaluated to lie within ±1 kHz. Under these conditions, it has been possible to obtain very accurate values of the B0 and D0 spectroscopic constants and of the 17O nuclear electric quadrupole coupling and spin–rotation constants.

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Available abstract

The pure rotational spectrum of C17O has been observed in the millimeter- and submillimeter-wave region using the Lamb-dip technique in order to increase the instrumental resolving power and so to analyze the hyperfine structure of the rotational transitions. The accuracy of the measurements have been evaluated to lie within ±1 kHz. Under these conditions, it has been possible to obtain very accurate values of the B0 and D0 spectroscopic constants and of the 17O nuclear electric quadrupole coupling and spin–rotation constants.

Key concepts: Quadrupole, Hyperfine structure, Rotational spectrum, Millimeter, Rotational transition, Extremely high frequency, Coupling constant, Rotation (mathematics)

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