A new four-dimensional ab initio potential energy surface for N2O-He and vibrational band origin shifts for the N2O-He(N) clusters with N = 1-40.

J Chem Phys

Institute of Theoretical and Computational Chemistry, Key Laboratory of Mesoscopic Chemistry, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210093, China.

Published: September 2012

AI Article Synopsis

  • A new potential energy surface for N₂O-He is developed using advanced computational methods, specifically CCSD(T) with a detailed basis set.
  • The surface takes into account the vibrational modes of N₂O due to their strong interactions, and a smoother global potential is created from the raw data.
  • By applying this potential, researchers use Monte Carlo simulations to find how the vibrational characteristics of the N₂O-He clusters change, achieving results that align well with experimental observations.

Article Abstract

A new four-dimensional ab initio potential energy surface for N(2)O-He is constructed at the CCSD(T) level with an aug-cc-pVQZ basis set together with bond functions. The vibrational coordinates Q(1) and Q(3) of N(2)O are explicitly included, due to the strong coupling between the symmetric and asymmetric stretches of N(2)O. A global potential energy surface is obtained by fitting the original potential points to a four-dimensional Morse∕long range (MLR) analytical form. In the fitting, the ab initio noise in the long range region of the potential is smoothed over by theoretically fixed long range parameters. Two-dimensional intermolecular potentials for both the ground and the excited υ(3) states of N(2)O are then constructed by vibrationally averaging the four-dimensional potential. Based on the two-dimensional potentials, we use the path integral Monte Carlo algorithm to calculate the vibrational band origin shifts for the N(2)O-He(N) clusters using a first order perturbation theory estimate. The calculated shifts agree reasonably well with the experimental values and reproduce the evolution tendency from dimer to large clusters.

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Source
http://dx.doi.org/10.1063/1.4749248DOI Listing

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