Title of article :
Heat of adsorption and density distribution in slit pores with
defective walls: GCMC simulation studies and
comparison with experimental data
Author/Authors :
D.D. Douds Jr.، نويسنده , , D. Nicholson، نويسنده , , H.D. Do، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2007
Abstract :
The adsorption behavior (capacity, density distribution and packing density) and the isosteric heat versus loading in a slit pore whose walls
contain defective graphene layers are investigated in this paper. The defective wall is characterized by the extent and size of the defect. Simulation
results obtained with the Grand Canonical Monte Carlo method reveal complex patterns of isosteric heat, and this complex behavior is a result of
the interplay between three factors: (i) the surface heterogeneity (solid–fluid interaction, sites with varying degree of affinity), (ii) fluid–fluid
interaction and (iii) the overlapping of potentials exerted by the two defective walls. We illustrate this with argon adsorption in pores of various
sizes, and results obtained from the simulation agree qualitatively with the experimental data at 77 K on Saran microporous S600H and micromesoporous
S84 charcoals of Beebe et al. [R.A. Beebe, B. Millard, J. Cynarski, J. Am. Chem. Soc. 75 (1953) 839]. The S600H was found to contain
pores predominantly in the neighborhood of 7 A°
with 30% of defect and a defective size of 2.84 A°
. This is consistent with the argument made by
Beebe et al. that this sample is a microporous solid and most pores can accommodate only one layer. The other sample, S84, has larger pores than
S600H, and it is found that it has a wider pore size distribution and the pore width is centered at about 12 A ° .
Keywords :
Grand Canonical Monte Carlo , Density distribution , simulation studies , Heat of adsorption
Journal title :
Applied Surface Science
Journal title :
Applied Surface Science