4.8 Article

Modeling high adsorption capacity and kinetics of organic macromolecules on super-powdered activated carbon

期刊

WATER RESEARCH
卷 45, 期 4, 页码 1720-1728

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.watres.2010.11.020

关键词

Diffusion; Isotherm; Shell; Equilibrium; Homogeneous surface diffusion model (HSDM)

资金

  1. Ministry of Education, Science, Sports, and Culture of the Government of Japan [21246083]
  2. Ministry of Health, Labor, and Welfare
  3. Metawater Co., Tokyo, Japan
  4. Grants-in-Aid for Scientific Research [21246083] Funding Source: KAKEN

向作者/读者索取更多资源

The capacity to adsorb natural organic matter (NOM) and polystyrene sulfonates (PSSs) on small particle-size activated carbon (super-powdered activated carbon, SPAC) is higher than that on larger particle-size activated carbon (powdered-activated carbon, PAC). Increased adsorption capacity is likely attributable to the larger external surface area because the NOM and PSS molecules do not completely penetrate the adsorbent particle; they preferentially adsorb near the outer surface of the particle. In this study, we propose a new isotherm equation, the Shell Adsorption Model (SAM), to explain the higher adsorption capacity on smaller adsorbent particles and to describe quantitatively adsorption isotherms of activated carbons of different particle sizes: PAC and SPAC. The SAM was verified with the experimental data of PSS adsorption kinetics as well as equilibrium. SAM successfully characterized PSS adsorption isotherm data for SPACs and PAC simultaneously with the same model parameters. When SAM was incorporated into an adsorption kinetic model, kinetic decay curves for PSSs adsorbing onto activated carbons of different particle sizes could be simultaneously described with a single kinetics parameter value. On the other hand, when SAM was not incorporated into such an adsorption kinetic model and instead isotherms were described by the Freundlich model, the kinetic decay curves were not well described. The success of the SAM further supports the adsorption mechanism of PSSs preferentially adsorbing near the outer surface of activated carbon particles. (C) 2010 Elsevier Ltd. All rights reserved.

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