Xiang Li , Kangning Peng , Wei Luo , Zhuang Liu , Xiaobin Wang , Rui Zheng
{"title":"High-resolution infrared spectra of the Ar–SO2 complex in the ν3 region of SO2: A global analysis of rovibrational spectra","authors":"Xiang Li , Kangning Peng , Wei Luo , Zhuang Liu , Xiaobin Wang , Rui Zheng","doi":"10.1016/j.jqsrt.2025.109681","DOIUrl":null,"url":null,"abstract":"<div><div>In this work, infrared spectra and intermolecular potential energy surface of the Ar–SO<sub>2</sub> van der Waals complex are investigated experimentally and theoretically, respectively. Firstly, the infrared spectrum of the Ar–SO<sub>2</sub> complex in the <em>ν</em><sub>3</sub> asymmetric stretching region of SO<sub>2</sub> is recorded using an external-cavity quantum cascade laser spectrometer in a supersonic slit jet expansion, and a total of 429 transitions are observed and assigned. A global analysis of these newly observed transitions, together with previously reported spectroscopic data of the microwave and SO<sub>2</sub> monomer <em>v</em><sub>1</sub> excited state, is carried out using a Watson <em>A</em>-reduced asymmetric rotor Hamiltonian. The band origins of the spectra are accurately determined to be 1361.33300(21) and 1361.30097(18) cm<sup>–1</sup> for the two tunneling components, respectively. These values represent a blue shift of approximately 0.7 cm<sup>–1</sup> compared to the vibrational frequency of the SO<sub>2</sub> monomer <em>ν</em><sub>3</sub> band. The tunneling splitting of Ar–SO<sub>2</sub> in the SO<sub>2</sub> monomer <em>v</em><sub>3</sub> excited state is determined to be 960.0 (58) MHz, which is 22.3 and 103.4 MHz lower than that observed in the ground vibrational state and in the SO<sub>2</sub> monomer <em>v</em><sub>1</sub> excited state, respectively. Furthermore, a three-dimensional intermolecular potential energy surface is constructed at the CCSD(T)/aug-cc-pVTZ level supplemented with bond functions, and the global minimum is determined to be a non-planar <em>C<sub>s</sub></em> geometry with structural parameters <em>R</em> = 3.59 Å, <em>θ</em> = 102.0°, and <em>φ</em> = 90.0°, respectively. What is more, the sign of the quartic centrifugal distortion constant <em>D<sub>K</sub></em> is found to strongly depend on transitions with different <em>K<sub>a</sub></em> quantum numbers, and this conclusion is supported by the good agreement between experimental observations and theoretical calculations.</div></div>","PeriodicalId":16935,"journal":{"name":"Journal of Quantitative Spectroscopy & Radiative Transfer","volume":"347 ","pages":"Article 109681"},"PeriodicalIF":1.9000,"publicationDate":"2025-09-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Journal of Quantitative Spectroscopy & Radiative Transfer","FirstCategoryId":"101","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S0022407325003437","RegionNum":3,"RegionCategory":"物理与天体物理","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q2","JCRName":"OPTICS","Score":null,"Total":0}
引用次数: 0
Abstract
In this work, infrared spectra and intermolecular potential energy surface of the Ar–SO2 van der Waals complex are investigated experimentally and theoretically, respectively. Firstly, the infrared spectrum of the Ar–SO2 complex in the ν3 asymmetric stretching region of SO2 is recorded using an external-cavity quantum cascade laser spectrometer in a supersonic slit jet expansion, and a total of 429 transitions are observed and assigned. A global analysis of these newly observed transitions, together with previously reported spectroscopic data of the microwave and SO2 monomer v1 excited state, is carried out using a Watson A-reduced asymmetric rotor Hamiltonian. The band origins of the spectra are accurately determined to be 1361.33300(21) and 1361.30097(18) cm–1 for the two tunneling components, respectively. These values represent a blue shift of approximately 0.7 cm–1 compared to the vibrational frequency of the SO2 monomer ν3 band. The tunneling splitting of Ar–SO2 in the SO2 monomer v3 excited state is determined to be 960.0 (58) MHz, which is 22.3 and 103.4 MHz lower than that observed in the ground vibrational state and in the SO2 monomer v1 excited state, respectively. Furthermore, a three-dimensional intermolecular potential energy surface is constructed at the CCSD(T)/aug-cc-pVTZ level supplemented with bond functions, and the global minimum is determined to be a non-planar Cs geometry with structural parameters R = 3.59 Å, θ = 102.0°, and φ = 90.0°, respectively. What is more, the sign of the quartic centrifugal distortion constant DK is found to strongly depend on transitions with different Ka quantum numbers, and this conclusion is supported by the good agreement between experimental observations and theoretical calculations.
期刊介绍:
Papers with the following subject areas are suitable for publication in the Journal of Quantitative Spectroscopy and Radiative Transfer:
- Theoretical and experimental aspects of the spectra of atoms, molecules, ions, and plasmas.
- Spectral lineshape studies including models and computational algorithms.
- Atmospheric spectroscopy.
- Theoretical and experimental aspects of light scattering.
- Application of light scattering in particle characterization and remote sensing.
- Application of light scattering in biological sciences and medicine.
- Radiative transfer in absorbing, emitting, and scattering media.
- Radiative transfer in stochastic media.