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Surface complexation modeling of Cu(II) adsorption on mixtures of hydrous ferric oxide and kaolinite

BACKGROUND: The application of surface complexation models (SCMs) to natural sediments and soils is hindered by a lack of consistent models and data for large suites of metals and minerals of interest. Furthermore, the surface complexation approach has mostly been developed and tested for single sol...

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Autores principales: Lund, Tracy J, Koretsky, Carla M, Landry, Christopher J, Schaller, Melinda S, Das, Soumya
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2546383/
https://www.ncbi.nlm.nih.gov/pubmed/18783619
http://dx.doi.org/10.1186/1467-4866-9-9
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author Lund, Tracy J
Koretsky, Carla M
Landry, Christopher J
Schaller, Melinda S
Das, Soumya
author_facet Lund, Tracy J
Koretsky, Carla M
Landry, Christopher J
Schaller, Melinda S
Das, Soumya
author_sort Lund, Tracy J
collection PubMed
description BACKGROUND: The application of surface complexation models (SCMs) to natural sediments and soils is hindered by a lack of consistent models and data for large suites of metals and minerals of interest. Furthermore, the surface complexation approach has mostly been developed and tested for single solid systems. Few studies have extended the SCM approach to systems containing multiple solids. RESULTS: Cu adsorption was measured on pure hydrous ferric oxide (HFO), pure kaolinite (from two sources) and in systems containing mixtures of HFO and kaolinite over a wide range of pH, ionic strength, sorbate/sorbent ratios and, for the mixed solid systems, using a range of kaolinite/HFO ratios. Cu adsorption data measured for the HFO and kaolinite systems was used to derive diffuse layer surface complexation models (DLMs) describing Cu adsorption. Cu adsorption on HFO is reasonably well described using a 1-site or 2-site DLM. Adsorption of Cu on kaolinite could be described using a simple 1-site DLM with formation of a monodentate Cu complex on a variable charge surface site. However, for consistency with models derived for weaker sorbing cations, a 2-site DLM with a variable charge and a permanent charge site was also developed. CONCLUSION: Component additivity predictions of speciation in mixed mineral systems based on DLM parameters derived for the pure mineral systems were in good agreement with measured data. Discrepancies between the model predictions and measured data were similar to those observed for the calibrated pure mineral systems. The results suggest that quantifying specific interactions between HFO and kaolinite in speciation models may not be necessary. However, before the component additivity approach can be applied to natural sediments and soils, the effects of aging must be further studied and methods must be developed to estimate reactive surface areas of solid constituents in natural samples.
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spelling pubmed-25463832008-09-22 Surface complexation modeling of Cu(II) adsorption on mixtures of hydrous ferric oxide and kaolinite Lund, Tracy J Koretsky, Carla M Landry, Christopher J Schaller, Melinda S Das, Soumya Geochem Trans Research Article BACKGROUND: The application of surface complexation models (SCMs) to natural sediments and soils is hindered by a lack of consistent models and data for large suites of metals and minerals of interest. Furthermore, the surface complexation approach has mostly been developed and tested for single solid systems. Few studies have extended the SCM approach to systems containing multiple solids. RESULTS: Cu adsorption was measured on pure hydrous ferric oxide (HFO), pure kaolinite (from two sources) and in systems containing mixtures of HFO and kaolinite over a wide range of pH, ionic strength, sorbate/sorbent ratios and, for the mixed solid systems, using a range of kaolinite/HFO ratios. Cu adsorption data measured for the HFO and kaolinite systems was used to derive diffuse layer surface complexation models (DLMs) describing Cu adsorption. Cu adsorption on HFO is reasonably well described using a 1-site or 2-site DLM. Adsorption of Cu on kaolinite could be described using a simple 1-site DLM with formation of a monodentate Cu complex on a variable charge surface site. However, for consistency with models derived for weaker sorbing cations, a 2-site DLM with a variable charge and a permanent charge site was also developed. CONCLUSION: Component additivity predictions of speciation in mixed mineral systems based on DLM parameters derived for the pure mineral systems were in good agreement with measured data. Discrepancies between the model predictions and measured data were similar to those observed for the calibrated pure mineral systems. The results suggest that quantifying specific interactions between HFO and kaolinite in speciation models may not be necessary. However, before the component additivity approach can be applied to natural sediments and soils, the effects of aging must be further studied and methods must be developed to estimate reactive surface areas of solid constituents in natural samples. BioMed Central 2008-09-10 /pmc/articles/PMC2546383/ /pubmed/18783619 http://dx.doi.org/10.1186/1467-4866-9-9 Text en Copyright © 2008 Lund et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Lund, Tracy J
Koretsky, Carla M
Landry, Christopher J
Schaller, Melinda S
Das, Soumya
Surface complexation modeling of Cu(II) adsorption on mixtures of hydrous ferric oxide and kaolinite
title Surface complexation modeling of Cu(II) adsorption on mixtures of hydrous ferric oxide and kaolinite
title_full Surface complexation modeling of Cu(II) adsorption on mixtures of hydrous ferric oxide and kaolinite
title_fullStr Surface complexation modeling of Cu(II) adsorption on mixtures of hydrous ferric oxide and kaolinite
title_full_unstemmed Surface complexation modeling of Cu(II) adsorption on mixtures of hydrous ferric oxide and kaolinite
title_short Surface complexation modeling of Cu(II) adsorption on mixtures of hydrous ferric oxide and kaolinite
title_sort surface complexation modeling of cu(ii) adsorption on mixtures of hydrous ferric oxide and kaolinite
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2546383/
https://www.ncbi.nlm.nih.gov/pubmed/18783619
http://dx.doi.org/10.1186/1467-4866-9-9
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