4.7 Article

Kinetics of heavy metal adsorption and desorption in soil: Developing a unified model based on chemical speciation

期刊

GEOCHIMICA ET COSMOCHIMICA ACTA
卷 224, 期 -, 页码 282-300

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.gca.2018.01.014

关键词

Kinetics model; Adsorption and desorption; Soil organic matter; Mineral; Binding sites; Heavy metal

资金

  1. National Science Foundation of China [41573090]
  2. Guangdong Innovative and Entrepreneurial Research Team Program [2016ZT06N569]
  3. Thousand Talent Program for Young Outstanding Scientists of China
  4. Louisiana State University
  5. Research Competitiveness Subprogram of Louisiana Board of Regents [LEQSF(2017-20)-RD-A-07]

向作者/读者索取更多资源

Predicting the kinetics of heavy metal adsorption and desorption in soil requires consideration of multiple heterogeneous soil binding sites and variations of reaction chemistry conditions. Although chemical speciation models have been developed for predicting the equilibrium of metal adsorption on soil organic matter (SOM) and important mineral phases (e.g. Fe and Al (hydr) oxides), there is still a lack of modeling tools for predicting the kinetics of metal adsorption and desorption reactions in soil. In this study, we developed a unified model for the kinetics of heavy metal adsorption and desorption in soil based on the equilibrium models WHAM 7 and CD-MUSIC, which specifically consider metal kinetic reactions with multiple binding sites of SOM and soil minerals simultaneously. For each specific binding site, metal adsorption and desorption rate coefficients were constrained by the local equilibrium partition coefficients predicted by WHAM 7 or CD-MUSIC, and, for each metal, the desorption rate coefficients of various binding sites were constrained by their metal binding constants with those sites. The model had only one fitting parameter for each soil binding phase, and all other parameters were derived from WHAM 7 and CD-MUSIC. A stirred-flow method was used to study the kinetics of Cd, Cu, Ni, Pb, and Zn adsorption and desorption in multiple soils under various pH and metal concentrations, and the model successfully reproduced most of the kinetic data. We quantitatively elucidated the significance of different soil components and important soil binding sites during the adsorption and desorption kinetic processes. Our model has provided a theoretical framework to predict metal adsorption and desorption kinetics, which can be further used to predict the dynamic behavior of heavy metals in soil under various natural conditions by coupling other important soil processes. (C) 2018 Elsevier Ltd. All rights reserved.

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