English

N$_3^+$: Full-Dimensional Potential Energy Surface, Vibrational Energy Levels and Ground State Dynamics

Chemical Physics 2020-08-03 v1

Abstract

The fundamentals and higher vibrationally excited states for the N3+_3^+ ion in its electronic ground state have been determined from quantum bound state calculations on 3-dimensional potential energy surfaces (PESs) at the CCSD(T)-F12 and MRCI+Q levels of theory. The vibrational fundamentals are at 1130 cm1^{-1} (ν1\nu_1, symmetric stretch), 807 cm1^{-1} (ν3\nu_3, asymmetric stretch), and 406 cm1^{-1} (ν2\nu_2, bend) on the higher-quality CCSD(T)-F12 surface. For ν1\nu_1, the calculations are close to the estimated frequency from experiment (1170 cm1^{-1}) and previous calculations\cite{rosmus.n3:1994} which find it at 1190 cm1^{-1}. Calculations of the vibrational states on the MRCI+Q PES are in qualitative agreement with those using the CCSD(T)-F12 PES. Analysis of the reference CASSCF wave function for the MRCI+Q calculations provides further insight into the shape of the PES and lends support for the reliability of Hartree-Fock as the reference wave function for the coupled cluster calculations. According to this, N3+_3^+ has mainly single reference character in all low-energy regions of its electronic ground state (3^3A'') 3d PES.

Keywords

Cite

@article{arxiv.2004.12404,
  title  = {N$_3^+$: Full-Dimensional Potential Energy Surface, Vibrational Energy Levels and Ground State Dynamics},
  author = {Debasish Koner and Max Schwilk and Sarbani Patra and Evan J. Bieske and Markus Meuwly},
  journal= {arXiv preprint arXiv:2004.12404},
  year   = {2020}
}