H2O–HCN complex: A new potential energy surface and intermolecular rovibrational states from rigorous quantum calculations

Author:

Vindel-Zandbergen Patricia1ORCID,Kȩdziera Dariusz2ORCID,Żółtowski Michał34ORCID,Kłos Jacek5ORCID,Żuchowski Piotr6ORCID,Felker Peter M.7ORCID,Lique François3ORCID,Bačić Zlatko189ORCID

Affiliation:

1. Department of Chemistry, New York University 1 , New York, New York 10003, USA

2. Faculty of Chemistry, Nicolaus Copernicus University in Toruń 2 , ul. Gagarina 7, 87-100 Toruń, Poland

3. University of Rennes, CNRS, IPR (Institut de Physique de Rennes) – UMR 6251 3 , F-35000 Rennes, France

4. LOMC - UMR 6294, CNRS-Université du Havre 4 , 25 rue Philippe Lebon, BP1123, 76 063 Le Havre cedex, France

5. Joint Quantum Institute, University of Maryland 5 , College Park, Maryland 20742, USA

6. Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University 6 , ul. Grudziądzka 5, 87-100 Toruń, Poland

7. Department of Chemistry and Biochemistry, University of California 7 , Los Angeles, California 90095-1569, USA

8. Simons Center for Computational Physical Chemistry at New York University 8 , New York, New York 10003, USA

9. NYU-ECNU Center for Computational Chemistry at NYU Shanghai 9 , 3663 Zhongshan Road North, Shanghai 200062, China

Abstract

In this work the H2O–HCN complex is quantitatively characterized in two ways. First, we report a new rigid-monomer 5D intermolecular potential energy surface (PES) for this complex, calculated using the symmetry-adapted perturbation theory based on density functional theory method. The PES is based on 2833 ab initio points computed employing the aug-cc-pVQZ basis set, utilizing the autoPES code, which provides a site-site analytical fit with the long-range region given by perturbation theory. Next, we present the results of the quantum 5D calculations of the fully coupled intermolecular rovibrational states of the H2O–HCN complex for the total angular momentum J values of 0, 1, and 2, performed on the new PES. These calculations rely on the quantum bound-state methodology developed by us recently and applied to a variety of noncovalently bound binary molecular complexes. The vibrationally averaged ground-state geometry of H2O–HCN determined from the quantum 5D calculations agrees very well with that from the microwave spectroscopic measurements. In addition, the computed ground-state rotational transition frequencies, as well as the B and C rotational constants calculated for the ground state of the complex, are in excellent agreement with the experimental values. The assignment of the calculated intermolecular vibrational states of the H2O–HCN complex is surprisingly challenging. It turns out that only the excitations of the intermolecular stretch mode can be assigned with confidence. The coupling among the angular degrees of freedom (DOFs) of the complex is unusually strong, and as a result most of the excited intermolecular states are unassigned. On the other hand, the coupling of the radial, intermolecular stretch mode and the angular DOFs is weak, allowing straightforward assignment of the excitation of the former.

Funder

National Science Foundation

National Science Center

COST Action

ERC (Consolidator Grant COLLEXISM

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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