Structure and spectroscopy of doped helium clusters using quantum Monte Carlo techniques
Alexandra Viel, K. Birgitta Whaley
Abstract
We present a comparative study of the rotational characteristics of various molecule-doped 4He clusters using quantum Monte Carlo techniques. The theoretical conclusions obtained from both zero and finite temperature Monte Carlo studies confirm the presence of two different dynamical regimes that correlate with the magnitude of the rotational constant of the molecule, i.e., fast or slow rotors. For a slow rotor, the effective rotational constant for the molecule inside the helium droplet can be determined by a microscopic two-fluid model in which helium densities computed by path integral Monte Carlo are used as input, as well as by direct computation of excited energy levels. For a faster rotor, the conditions for application of the two-fluid model for dynamical analysis are usually not fulfilled and the direct determination of excitation energies is then mandatory. Quantitative studies for three molecules are summarized, showing in each case excellent agreement with experimental results.
Create a lesson
Related papers
What is superatom?
Zhigang Wang
Size characterization of neutral rare-gas clusters based on time-resolved polarization anisotropy measurements
Arne Morlok, Grzegorz Kowzan, Yilin Li et al.
Lithium Borohydride (LiBH4): An Innovative Material for Neutron Radiation Shielding
Mohammadreza Lotfalian, Mitra Athari Allaf, Masoud Mansouri
Signatures of a bilayer structure in the photoelectron spectrum of B80-
Yi-Sha Chen, Jing-Jing Guo, Peng-Bo Liu et al.
Nonadiabatic Dynamics and Rotational Coupling in HeH+ Dissociative Recombination and Resonant Ion-Pair Formation
Sifiso Musa Nkambule, Malibongwe Tsabedze, Oscar N. Mabuza et al.
Rainbow RABBITT as a Probe of Coherent Rabi Dynamics
Vladislav V. Serov, Anatoli S. Kheifets