4.5 Article

Adsorption of furan, hexanoic acid, and alkanes in a hierarchical zeolite at reaction conditions: Insights from molecular simulations

期刊

JOURNAL OF COMPUTATIONAL SCIENCE
卷 48, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jocs.2020.101267

关键词

Multi-component adsorption; Gibbs ensemble Monte Carlo; Mesopore condensation

资金

  1. Department of Energy, Office of Basic Energy Sciences, Division of Chemical Sciences, Geosciences, and Biosciences, United States [DE-FG02-17ER16362]
  2. Catalysis Center for Energy Innovation, an Energy Frontier Research Center - U.S. Department of Energy, Office of Science, United States, Basic Energy Sciences, United States [DE-SC0001004]

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Hierarchical zeolites with micropores and mesopores were studied using Monte Carlo simulations to investigate molecule distribution under elevated temperature and pressure. The adsorption behavior showed that alkanes fill micropores first, while furan and hexanoic acid preferentially adsorb on the mesopore surface. Hydrogen bonding interactions and mesopore condensation were observed, especially when hexanoic acid adsorption occurred in the presence of alkane solvents, suggesting potential for tuning selectivity and spatial distribution.
Hierarchical zeolites containing both micropores and mesopores are valuable catalysts for facilitating reactions of large molecules. Furan acylation by fatty acids is a promising reaction for valorizing biomass, and the self-pillared pentasil (SPP) zeolite was found to perform particularly well for this reaction. To better understand the distribution of molecules in hierarchical zeolites at the elevated temperature (T = 523 K) and the elevated pressure (p > 1 bar) associated with typical reaction conditions, unary and binary adsorption were predicted using Monte Carlo simulations in the isothermal-isobaric Gibbs ensemble. Adsorption of six species (furan, hexanoic acid, n-hexane, n-decane, n-tetradecane, and 3,6-diethyloctane) was investigated from vapor, liquid, and supercritical phases, and loadings into the micropores, onto the mesopore surface, and in the mesopore interior of SPP were obtained. As pressure increases, n-alkanes fill the micropores before loading the surface and then the interior of the mesopore, while furan and hexanoic acid adsorb strongly to the mesopore surface due to hydrogen bonding interactions with surface silanols. Hydrogen bonding interactions also draw hexanoic acid molecules in the micropore region toward the pore mouths, so their carboxylic acid group forms H-bonds with silanols, while the alkyl tails interact with the micropore walls. Mesopore condensation is observed for molecules below their critical point, and occurs when the Gibbs free energy of transfer into the mesopore interior and onto the mesopore surface converge. When hexanoic acid adsorption occurs in the presence of alkane solvents, then the selectivity and spatial distribution of hexanoic acid in the micropores and on the surface can be tuned by adjusting the fluid pressure and the alkane length and/or branching.

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