Solubility-normalized combined adsorption-partitioning sorption isotherms for organic pollutants

被引:211
作者
Kleineidam, S [1 ]
Schüth, C [1 ]
Grathwohl, P [1 ]
机构
[1] Univ Tubingen, Ctr Appl Geosci, Appl Geol Grp, D-72076 Tubingen, Germany
关键词
D O I
10.1021/es010293b
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Equilibrium sorption isotherms were measured for five different low-polarity organic compounds (benzene, trichloroethene, 1,2- and 1,4-dichlorobenzene, and phenanthrene) over a wide concentration range. The investigated sorbents can be grouped into the following three classes: (1) humic soil organic matter, which shows linear sorption isotherms (solely partitioning, as observed in the peat sample); (2) carbon materials, which were thermally altered (due to their natural history or industrial production) and thus contain a high specific surface area and exhibit nonlinear isotherms, and (3) pure engineered microporous materials (e.g., zeolites and activated carbon), where adsorption is solely due to a pore-filling process. Sorption of all compounds was fitted very well by the Polanyi-Dubinin-Manes (PDM) model, which for sorbents containing humic organic matter (e.g., peat) was combined with linear partitioning. Both the partitioning and the Polanyi-Dubinin-Manes model predict unique sorption isotherms of similar compounds if the solubility-normalized aqueous concentration is used. In addition, an inverse linear relationship between the distribution coefficient (K-d) and water solubility, which was very well confirmed by the data, is obtained. This also leads to unit-equivalent Freundlich sorption isotherms and explains the often observed apparent correlation between sorption capacity at a given concentration (e.g., Freundlich coefficient) and sorption nonlinearity (Freundlich exponent).
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页码:4689 / 4697
页数:9
相关论文
共 65 条
[51]   Airborne contamination of forest soils by carbonaceous particles from industrial coal processing [J].
Schmidt, MWI ;
Knicker, H ;
Hatcher, PG ;
Kögel-Knabner, I .
JOURNAL OF ENVIRONMENTAL QUALITY, 2000, 29 (03) :768-777
[52]  
SCHWARZENBACH RP, 1993, ENV ORGANIC GEOCHEMI
[53]   Estimating the organic carbon partition coefficient and its variability for hydrophobic chemicals [J].
Seth, R ;
Mackay, D ;
Muncke, J .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1999, 33 (14) :2390-2394
[54]   Non-living soil organic matter: what do we know about it? [J].
Skjemstad, JO ;
Janik, LJ ;
Taylor, JA .
AUSTRALIAN JOURNAL OF EXPERIMENTAL AGRICULTURE, 1998, 38 (07) :667-680
[55]  
van Krevelen D., 1993, COAL
[56]  
Van Krevelen D. W, 1997, PROPERTIES POLYM
[57]  
Verschueren K., 1983, HDB ENV DATA ORGANIC
[58]   A DISTRIBUTED REACTIVITY MODEL FOR SORPTION BY SOILS AND SEDIMENTS .1. CONCEPTUAL BASIS AND EQUILIBRIUM ASSESSMENTS [J].
WEBER, WJ ;
MCGINLEY, PM ;
KATZ, LE .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1992, 26 (10) :1955-1962
[59]   A distributed reactivity model for sorption by soils and sediments .4. Intraparticle heterogeneity and phase-distribution relationships under nonequilibrium conditions [J].
Weber, WJ ;
Huang, WL .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1996, 30 (03) :881-888
[60]   Contaminant interactions with geosorbent organic matter: Insights drawn from polymer sciences [J].
Weber, WJ ;
Leboeuf, EJ ;
Young, TM ;
Huang, WL .
WATER RESEARCH, 2001, 35 (04) :853-868