On Boltzmann averaging in <i>ab initio</i> thermodynamics
Abstract
Ab initio thermodynamics is a widespread, computationally efficient approach to predict the stable configuration of a surface in contact with a surrounding (gas or liquid) environment. In a prevalent realization of this approach, this stable configuration is simply equated with the structure in a considered candidate pool that exhibits the lowest surface free energy. Here, we discuss the possibility to consider the thermal accessibility of competing, higher-energy configurations through Boltzmann averaging when extended surface configurations and their energetics are computed within periodic boundary condition supercells. We show analytically that fully converged averages can be obtained with a candidate pool derived from exhaustive sampling in a surface unit-cell exceeding the system’s correlation length. In contrast, averaging over a small pool of ad hoc assembled structures is generally ill-defined. Enumerations of a lattice-gas Hamiltonian model for on-surface oxygen adsorption at Pd(100) are employed to illustrate these considerations in a practical context.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (2)
Hendrik H. Heenen
Fritz-Haber-Institute of the Max-Planck-Society 23 , Berlin,
Karsten Reuter
Theory Department, Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, 14195 Berlin, Germany