4.7 Article

Site energy distribution analysis of Cu (II) adsorption on sediments and residues by sequential extraction method

期刊

ENVIRONMENTAL POLLUTION
卷 208, 期 -, 页码 450-457

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.envpol.2015.10.014

关键词

Copper; Adsorption; Sequential extraction; Site energy distribution; Sorption sites

资金

  1. Major Science and Technology Program of China for Water Pollution Control and Treatment [2014ZX07204-008]

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Many models (e.g., Langmuir model, Freundlich model and surface complexation model) have been successfully used to explain the mechanism of metal ion adsorption on the pure mineral materials. These materials usually have a homogeneous surface where all sites have the same adsorption energies. However, it's hardly appropriate for such models to describe the adsorption on heterogeneous surfaces (e.g., sediment surface), site energy distribution analysis can be to. In the present study, the site energy distribution analysis was used to describe the surface properties and adsorption behavior of the non-residual and residual components extracted from the natural aquatic sediment samples. The residues were prepared in-situ by using the sequential extraction procedure. The present study is intended to investigate the roles of different components and the change of site energy distribution at different temperatures of the sediment samples in controlling Cu (II) adsorption. The results of the site energy distribution analysis indicated firstly, that the sorption sites of iron/manganese hydrous oxides (IMHO) and organic matter (OM) have higher energy. Secondly, light fraction (LF) and carbonates have little influence on site energy distribution. Finally, there was increase in site energies with the increase of temperature. Specially, low temperature (5 degrees C) significantly influenced the site energies of IMHO and OM, and also had obvious effect on the energy distribution of the sediments after removing target components. The site energy distribution analysis proved to be a useful method for us to further understand the energetic characteristics of sediment in comparison with those previously obtained. (C) 2015 Elsevier Ltd. All rights reserved.

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