An exact approach for describing adsorption and catalysis of interacting species in lattice models

K Kristen A. Fichthorn E Ethan Cooper (Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,) C Conan H. Humphries (Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,) A Ashlyn A. Latham (Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,) L Lawson A. Okpaire (Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,) M Melanie R. Pachter (Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,) H Haixing Piao (Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,) N Nitu Verma (Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,) H Hui Yin

Abstract

Lattice models provide a useful framework for studying the adsorption and catalysis of interacting species. For such systems, the mean-field and quasi-chemical approximations are widely used. At equilibrium, full enumeration of the grand-canonical partition function would allow for an exact solution to these problems. However, the combinatorial complexity confines this approach to small systems. In this work, we consider how large a lattice needs to be for full enumeration to yield a feasible solution for equilibrium systems. As representative applications, we consider adsorption isotherms and the rate of a catalytic bimolecular reaction for the case that the surface reaction is the rate-limiting step. In these applications, we show that full enumeration on appropriately chosen small lattices accurately reproduces the converged results of Monte Carlo simulations on much larger lattices. We find that the commonly employed mean-field approximation can be off by up to five orders of magnitude and the quasi-chemical approximation is also inaccurate, while results from full enumeration are exact and converged. Our results are promising for studies aiming to quantify surface phenomena from first principles. Moreover, the full enumeration approach can be extended to kinetics, making this approach feasible for both equilibrium and kinetic studies of surface phenomena.

Article Details

Volume / Issue Vol. 165, Issue 5
Published August 07, 2026
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (9)

K

Kristen A. Fichthorn

E

Ethan Cooper

Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,

C

Conan H. Humphries

Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,

A

Ashlyn A. Latham

Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,

L

Lawson A. Okpaire

Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,

M

Melanie R. Pachter

Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,

H

Haixing Piao

Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,

N

Nitu Verma

Department of Chemical Engineering, The Pennsylvania State University 1 , University Park, Pennsylvania 16802,

H

Hui Yin