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  4. Low Fe(II) Concentrations Catalyze the Dissolution of Various Fe(III) (hydr)oxide Minerals in the Presence of Diverse Ligands and over a Broad pH Range
 
research article

Low Fe(II) Concentrations Catalyze the Dissolution of Various Fe(III) (hydr)oxide Minerals in the Presence of Diverse Ligands and over a Broad pH Range

Kang, Kyounglim
•
Schenkeveld, Walter D. C.
•
Biswakarma, Jagannath
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January 1, 2019
Environmental Science & Technology

Dissolution of Fe(III) (hydr)oxide minerals by siderophores (i.e., Fe-specific, biogenic ligands) is an important step in Fe acquisition in environments where Fe availability is low. The observed coexudation of reductants and ligands has raised the question of how redox reactions might affect ligand-controlled (hydr)oxide dissolution and Fe acquisition. We examined this effect in batch dissolution experiments using two structurally distinct ligands (desferrioxamine B (DFOB) and N,N'-di(2-hydroxybenzyl)-ethylene-diamine-N,N'-diacetic acid (HBED)) and four Fe(III) (hydr)oxide minerals (lepidocrocite, 2-line ferrihydrite, goethite and hematite) over an environmentally relevant pH range (4-8.5). The experiments were conducted under anaerobic conditions with varying concentrations of (adsorbed) Fe(II) as the reductant. We observed a catalytic effect of Fe(II) on ligand-controlled dissolution even at submicromolar Fe(II) concentrations with up to a 13-fold increase in dissolution rate. The effect was larger for HBED than for DFOB. It was observed for all four Fe(III) (hydr)oxide minerals, but it was most pronounced for goethite in the presence of HBED. It was observed over the entire pH range with the largest effect at pH 7 and 8.5, where Fe deficiency typically occurs. The occurrence of this catalytic effect over a range of environmentally relevant conditions and at very low Fe(II) concentrations suggests that redox-catalyzed, ligand-controlled dissolution may be significant in biological Fe acquisition and in redox transition zones.

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Type
research article
DOI
10.1021/acs.est.8b03909
Web of Science ID

WOS:000455076600011

Author(s)
Kang, Kyounglim
Schenkeveld, Walter D. C.
Biswakarma, Jagannath
Borowski, Susan C.
Hug, Stephan J.
Hering, Janet G.  
Kraemer, Stephan M.
Date Issued

2019-01-01

Publisher

AMER CHEMICAL SOC

Published in
Environmental Science & Technology
Volume

53

Issue

1

Start page

98

End page

107

Subjects

Engineering, Environmental

•

Environmental Sciences

•

Engineering

•

Environmental Sciences & Ecology

•

coordination chemistry

•

reductive dissolution

•

fe acquisition

•

iron

•

oxide

•

oxidation

•

water

•

lepidocrocite

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ferrihydrite

•

adsorption

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
UPHCE  
Available on Infoscience
January 23, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/154017
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