4.7 Article

Numerical analysis of the micropore structure of activated carbons focusing on optimum CO2 adsorption

期刊

JOURNAL OF CO2 UTILIZATION
卷 60, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.jcou.2022.101996

关键词

Activated carbon; Adsorption; Moso bamboo; Quenched solid density functional theory; Carbon dioxide

资金

  1. Research Subvention of the Polish Ministry of Science and Higher Education for the AGH University of Science and Technology in Krakow [16.16.210.476]

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In this study, the porous structure of activated carbons prepared from Moso bamboo was mathematically analyzed. The analysis revealed the complexity of the carbon's porous structure and the differences in CO2 and N-2 adsorption. The combination of various methods used in the study assists in determining the optimal activated carbon for CO2 adsorption.
In this work, the porous structure of activated carbons prepared from Moso bamboo were mathematically analysed. At first, the raw material was subjected to two-stage activation process i.e. in the first stage, phosphoric acid or zinc chloride was used followed by second stage physical activation or chemical activation with potassium hydroxide. Then, nitrogen and carbon dioxide adsorption isotherms were determined. Subsequently, a novel, clustering-based adsorption analysis method was applied, combined with a numerical procedure for the fast multivariant identification of adsorption systems. The mentioned method takes into consideration the heterogeneity of the adsorbent surface and allows the determination of the adsorption energy as well as the shape and size of the clusters of adsorbate molecules formed in the pores of the analysed material. Additionally, the Quenched Solid Density Functional Theory was selected to determine the cumulative pore volume, pore size distributions and other micropore parameters. The analyses revealed a considerable degree of complexity of the carbons' porous structure, including differences in the adsorption of CO2 and N-2. The complementarity of the applied methods leads to the reliable determination of the optimum activated carbon for CO2 adsorption and assists reverse engineering approaches in the production and activation stage.

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