Thermodynamics of Na_8 and Na_{20} clusters studied with ab-initio electronic structure methods
arXiv:physics/0011063 · doi:10.1103/PhysRevB.64.045408
Abstract
We study the thermodynamics of Na_8 and Na_{20} clusters using multiple-histogram methods and an ab initio treatment of the valence electrons within density functional theory. We consider the influence of various electron kinetic-energy functionals and pseudopotentials on the canonical ionic specific heats. The results for all models we consider show qualitative similarities, but also significant temperature shifts from model to model of peaks and other features in the specific-heat curves. The use of phenomenological pseudopotentials shifts the melting peak substantially (~ 50--100 K) when compared to ab-initio results. It is argued that the choice of a good pseudopotential and use of better electronic kinetic-energy functionals has the potential for performing large time scale and large sized thermodynamical simulations on clusters.
LaTeX file and EPS figures. 24 pages, 13 figures. Submitted to Phys. Rev. B
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