Modeling nitrogen adsorption in spherical pores of siliceous materials by density functional theory


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

not available

Data(s)

01/01/2005

Resumo

Adsorption of nitrogen in spherical pores of FDU-1 silica at 77 K is considered by means of a nonlocal density functional theory (NLDFT) accounting for a disordered structure of pore walls. Pore size distribution analysis of various FDU-1 samples subject to different temperatures of calcination revealed three distinct groups of pores. The principal group of pores is identified as ordered spherical mesopores connected with each other by smaller interconnecting pores and irregular micropores present in the mesopore walls. To account for the entrances (connecting pores) into spherical mesopores, a concept of solid mass distribution with respect to the apparent density was introduced. It is shown that the introduction of the aforementioned distribution was sufficient to quantitatively describe experimental adsorption isotherms over the entire range of relative pressures spanning six decades.

Identificador

http://espace.library.uq.edu.au/view/UQ:75577

Idioma(s)

eng

Publicador

American Chemical Society

Palavras-Chave #Chemistry, Multidisciplinary #Mcm-41 Molecular-sieves #Monte-carlo-simulation #Capillary Condensation #Cylindrical Pores #Argon Adsorption #Mesoporous Materials #Size Distributions #Nanoporous Silicas #Activated Carbons #Criticality #C1 #290600 Chemical Engineering #670799 Other
Tipo

Journal Article