Capillary phenomena in the framework of the two-dimensional density functional theory


Autoria(s): Ustinov, E. A.; Do, D. D.
Contribuinte(s)

Kent S Knaebel

Data(s)

01/01/2005

Resumo

We present results of application of the density functional theory (DFT) to adsorption and desorption in finite and infinite cylindrical pores accounting for the density distribution in radial and axial directions. Capillary condensation via formation of bridges is considered using canonical and grand canonical versions of the 2D DFT. The potential barrier of nucleation is determined as a function of the bulk pressure and the pore diameter. In the framework of the conventional assumptions on intermolecular interactions both 1D and 2D DFT versions lead to the same results and confirm the classical scenario of condensation and evaporation: the condensation occurs at the vapor-like spinodal point, and the evaporation corresponds to the equilibrium transition pressure. The analysis of experimental data on argon and nitrogen adsorption on MCM-41 samples seems to not completely corroborate this scenario, with adsorption branch being better described by the equilibrium pressure - diameter dependence. This points to the necessity of the further development of basic representations on the hysteresis phenomena.

Identificador

http://espace.library.uq.edu.au/view/UQ:75319

Idioma(s)

eng

Publicador

Springer

Palavras-Chave #Adsorption #Cylindrical Pore #Density Functional Theory #Capillary Condensation #Nucleation #Chemistry, Physical #Engineering, Chemical #Argon Adsorption #Pore #Simulation #Heterogeneity #Distributions #Isotherms #Nitrogen #Spheres #Model #C1 #290600 Chemical Engineering
Tipo

Journal Article