Literature DB >> 18678005

Confounding impacts of iron reduction on arsenic retention.

Katharine J Tufano1, Scott Fendorf.   

Abstract

A transition from oxidizing to reducing conditions has long been implicated to increase aqueous As concentrations, for which reductive dissolution of iron (hydr)oxides is commonly implicated as the primary culprit. Confounding our understanding of processes controlling As retention, however, is that reductive transformation of ferrihydrite has recently been shown to promote As retention rather than release. To resolve the role iron phases have in regulating arsenic concentrations, here we examine As desorption from ferrihydrite-coated sands presorbed with As(III); experiments were performed at circumneutral pH under Fe-reducing conditions with the dissimilatory iron reducing bacterium Shewanella putrefaciens strain CN-32 over extended time periods. We reveal that with the initial phase of iron reduction, ferrihydrite undergoes transformation to secondary phases and increases As(III) retention (relative to abiotic controls). However, with increased reaction time, cessation of the phase transitions and ensuing reductive dissolution result in prolonged release of As(III) to the aqueous phase. Our results suggest that As(III) retention during iron reduction is temporally dependent on secondary precipitation of iron phases; during transformation to secondary phases, particularly magnetite, As(III) retention is enhanced even relative to oxidized systems. However, conditions that retard secondary transformation (more stable iron oxides or limited iron reducing bacterial activity), or prolonged anaerobiosis, will lead to both the dissolution of ferric (hydr)oxides and release of As(III) to the aqueous phase.

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Year:  2008        PMID: 18678005     DOI: 10.1021/es702625e

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  10 in total

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3.  Contrasting arsenic cycling in strongly and weakly stratified contaminated lakes: Evidence for temperature control on sediment-water arsenic fluxes.

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4.  Factors influencing arsenic concentrations and species in mangrove surface sediments from south-east NSW, Australia.

Authors:  S R Hettiarachchi; W A Maher; F Krikowa; R Ubrihien
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5.  Effects of NO3 (-) and PO4 (3-) on the release of geogenic arsenic and antimony in agricultural wetland soil: a field and laboratory approach.

Authors:  Asmaa Rouwane; Marion Rabiet; Malgorzata Grybos; Guillaume Bernard; Gilles Guibaud
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6.  Increased exposure of plankton to arsenic in contaminated weakly-stratified lakes.

Authors:  P M Barrett; E A Hull; C E King; K Burkart; K A Ott; J N Ryan; J E Gawel; R B Neumann
Journal:  Sci Total Environ       Date:  2018-01-12       Impact factor: 7.963

7.  In situ arsenic immobilisation for coastal aquifers using stimulated iron cycling: Lab-based viability assessment.

Authors:  Alyssa Barron; Jing Sun; Stefania Passaretti; Chiara Sbarbati; Maurizio Barbieri; Nicolò Colombani; James Jamieson; Benjamin C Bostick; Yan Zheng; Micòl Mastrocicco; Marco Petitta; Henning Prommer
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Journal:  Front Microbiol       Date:  2012-03-23       Impact factor: 5.640

9.  Shewanella oneidensis MR-1-Induced Fe(III) Reduction Facilitates Roxarsone Transformation.

Authors:  Guowei Chen; Zhengchen Ke; Tengfang Liang; Li Liu; Gang Wang
Journal:  PLoS One       Date:  2016-04-21       Impact factor: 3.240

10.  The Effect of Drying/Re-Flooding on Trace Metal, As and Se Fluxes in a Treatment Wetland: Addressing Growing Environmental Concerns.

Authors:  Drew J Hansen; Alex J Horne
Journal:  Biology (Basel)       Date:  2022-01-25
  10 in total

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