Rovibrational investigation of a new high-lying 0u+ state of Cu2 by using two-color resonant four-wave-mixing spectroscopy

Author:

Jin Jiaye1ORCID,Zhang Qiang1ORCID,Bornhauser Peter1ORCID,Knopp Gregor1ORCID,Marquardt Roberto2ORCID,Radi Peter P.1ORCID

Affiliation:

1. Photon Science Division, Paul Scherrer Institute, 5232 Villigen PSI, Switzerland

2. Laboratoire de Chimie Quantique, Institut de Chimie, Université de Strasbourg, 4 rue Blaise Pascal - CS90032, 67081 Strasbourg Cedex, France

Abstract

A highly excited electronic state of dicopper is observed and characterized for the first time. The [Formula: see text]-[Formula: see text] system is measured at rotational resolution by using degenerate and two-color resonant four-wave-mixing, as well as laser induced fluorescence spectroscopy. Double-resonance experiments are performed by labeling selected rotational levels of the ground state by tuning the probe laser wavelength to transitions in the well-known (1-0) band of the [Formula: see text]-[Formula: see text] electronic system. Spectra obtained by scans of the pump laser in the UV wavelength range were then assigned unambiguously by the stringent double-resonance selection rules. The absence of a Q-band suggests a parallel transition (ΔΩ = 0) and determines the term symbol of the state as [Formula: see text] in Hund’s case (c) notation. The equilibrium constants for 63Cu2 are Te = 39 559.921(92) cm−1, ωe = 277.70(14) cm−1, Be = 0.104 942(66) cm−1, and re = 2.2595(11) Å. These findings are supported by high-level ab initio calculations at the MRCI+Q level, which clearly identifies this state as resulting from a 4p ← 3d transition. In addition, three dark perturber states are found in the v = 1 and v = 2 vibrational levels of the new state. A deperturbation analysis characterizes the interaction and rationalizes the anomalous dips in the excitation spectrum of the [Formula: see text]-[Formula: see text] system.

Funder

Swiss National Science Foundation

Université de Strasbourg

Institut de Chimie

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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