Many-body trial wave functions for atomic systems and ground states of small noble gas clusters
Andrei Mushinski, M. P. Nightingale
Abstract
Clusters of sizes ranging from two to five are studied by variational quantum Monte Carlo techniques. The clusters consist of Ar, Ne and hypothetical lighter (``1 2-Ne") atoms. A general form of trial function is developed for which the variational bias is considerably smaller than the statistical error of currently available diffusion Monte Carlo estimates. The trial functions are designed by a careful analysis of long- and short-range behavior as a function of inter-atomic distance; at intermediate distances, on the order of the average nearest neighbor distance, the trial functions are constructed to have considerable variational freedom. A systematic study of the relative importance of n-body contributions to the quality of the optimized trial wave function is made with 2 n 5. Algebraic invariants are employed to deal efficiently with the many-body interactions.
Create a lesson
Related papers
A Computational Study of Thirteen-atom Ar-Kr Cluster Heat Capacities
Don D. Frantz
A Variational Approach to the Structure and Thermodynamics of Linear Polyelectrolytes with Coulomb and Screened Coulomb Interactions
B. Jönsson, C. Peterson, B. Söderberg
Applications of the Optimized Effective Potential Method of Density Functional Theory to Atomic and Molecular Systems
T. Grabo, E. K. U. Gross
Relation between a Screened Polyelectrolyte and a Field Theory
Bo Soderberg
ΔI=4 and ΔI=8 bifurcations in rotational bands of diatomic molecules
Dennis Bonatsos, C. Daskaloyannis, G. A. Lalazissis et al.
A Dynamical Theory of Electron Transfer: Crossover from Weak to Strong Electronic Coupling
Juergen T. Stockburger, C. H. Mak