Published September 15, 2004 | Version v1
Journal article

Rotational excitations of N2O in small helium clusters and the role of Bose permutation symmetry

  • 1. Department of Chemistry and Pitzer Center for Theoretical Chemistry, University of California, Berkeley, California 94720 (United States)

Description

We present a detailed study of the energetics, structures, and Bose properties of small clusters of 4He containing a single nitrous oxide (N2O) molecule, from N=1 4He up to sizes corresponding to completion of the first solvation shell around N2O (N=16 4He). Ground state properties are calculated using the importance-sampled rigid-body diffusion Monte Carlo method, rotational excited state calculations are made with the projection operator imaginary time spectral evolution method, and Bose permutation exchange and associated superfluid properties are calculated with the finite temperature path integral method. For N≤5 the helium atoms are seen to form an equatorial ring around the molecular axis, at N=6 helium density starts to occupy the second (local) minimum of the N2O-He interaction at the oxygen side of the molecule, and N=9 is the critical size at which there is onset of helium solvation all along the molecular axis. For N≥8 six 4He atoms are distributed in a symmetric, quasirigid ring around N2O. Path integral calculations show essentially complete superfluid response to rotation about the molecular axis for N≥5, and a rise of the perpendicular superfluid response from zero to appreciable values for N≥8. Rotational excited states are computed for three values of the total angular momentum, J=1-3, and the energy levels fitted to obtain effective spectroscopic constants that show excellent agreement with the experimentally observed N dependence of the effective rotational constant Beff. The non-monotonic behavior of the rotational constant is seen to be due to the onset of long 4He permutation exchanges and associated perpendicular superfluid response of the clusters for N≥8. We provide a detailed analysis of the role of the helium solvation structure and superfluid properties in determining the effective rotational constants

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Chemical Physics
Journal Volume
121
Journal Issue
11
Journal Page Range
p. 5293-5311
ISSN
0021-9606
CODEN
JCPSA6

Optional Information

Notes
(c) 2004 American Institute of Physics.