Published December 21, 2013 | Version v1
Journal article

Comparison of several classical density functional theories for the adsorption of flexible chain molecules into cylindrical nanopores

  • 1. Institute for Condensed Matter Physics, Svientsitskoho 1, 79011 Lviv (Ukraine)
  • 2. Department of Chemical and Biomolecular Engineering, Vanderbilt University, Nashville, Tennessee 37235 (United States)
  • 3. Center for Nanophase Materials Sciences, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831 (United States)
  • 4. Department of Chemistry, Vanderbilt University, Nashville 37235 (United States)

Description

Adsorption of flexible oligomers into narrow cylindrical pores has been studied by means of several versions of classical density functional theory (CDFT) and Monte Carlo simulation. The adsorption process is interesting to study due to the competition between the entropic depletion of oligomers from the pores and the wall–oligomer attraction. It is also challenging to describe using current CDFTs, which tend to overestimate the amount of the adsorbed fluid. From a comparison of several different CDFT approaches, we find that this is due to the assumption of ideal or freely jointed chain conformations. Moreover, it is demonstrated that it is impossible to obtain a reasonable description of the adsorption isotherms without taking into account accurate contact values in the distribution functions describing the structure of the reference monomer fluid. At low densities, more accurate result are obtained in comparison with Monte Carlo simulation data when accurate contact values are incorporated into the theory rather than the more commonly used hard-sphere contact value. However, even the CDFT with accurate contact values still overestimates the amount of the adsorbed fluid due to the ideal or freely jointed chain approximation, used for the description of chain conformations in most CDFT approaches. We find that significant improvement can achieved by employing self-consistent field theory, which samples self-avoiding chain conformations and decreases the number of possible chain conformations, and, consequently, the amount of the adsorbed fluid

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Chemical Physics
Journal Volume
139
Journal Issue
23
Journal Page Range
p. 234902-234902.14
ISSN
0021-9606
CODEN
JCPSA6

INIS

Optional Information

Notes
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