Literature DB >> 16719104

Abiotic reduction of nitroaromatic compounds by aqueous iron(ll)-catechol complexes.

Daisuke Naka1, Dongwook Kim, Timothy J Strathmann.   

Abstract

Complexation of iron(ll) by catechol and thiol ligands leads to the formation of aqueous species that are capable of reducing substituted nitroaromatic compounds (NACs) to the corresponding anilines. No reactions of NACs are observed in FelI-only or ligand-only solutions. In solutions containing FeII and tiron, a model catechol, rates of NAC reduction are heavily dependent on pH, ligand concentration, and ionic strength. Observed pseudo-first-order rate constants (k(obs)) for 4-chloronitrobenzene reduction vary by more than 6 orders of magnitude, and the variability is well described by the expression k(obs) = k(FeL2)(6-) [FeL2(6-)], where [FeL2(6-)] is the concentration of the 1:2 FeII-tiron complex and kFeL2(6-) is the bimolecular rate constant for 4-chloronitrobenzene reaction with this species. The high reactivity of this FeII species is attributed to the low standard one-electron reduction potential of the corresponding FeIII/FeII redox couple (EH0 = -0.509 V vs NHE). The relative reactivity of different NACs can be described by a linear free-energy relationship (LFER) with the one-electron reduction potentials of the NACs, EH1'(ArNO2). The experimentally derived slope of the LFER indicates that electron transfer is rate determining. These findings suggest that FeII-organic complexes may play an important, previously unrecognized, role in the reductive transformation of persistent organic contaminants.

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Year:  2006        PMID: 16719104     DOI: 10.1021/es060044t

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


  5 in total

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2.  Redirecting Research on Fe0 for Environmental Remediation: The Search for Synergy.

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3.  Abiotic reduction of p-chloronitrobenzene by sulfate green rust: influence factors, products and mechanism.

Authors:  Ying Han; Junkai Huang; Hongyuan Liu; Yue Wu; Zhao Wu; Kemin Zhang; Qingjie Lu
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4.  Coordinate and redox interactions of epinephrine with ferric and ferrous iron at physiological pH.

Authors:  Jelena Korać; Dalibor M Stanković; Marina Stanić; Danica Bajuk-Bogdanović; Milan Žižić; Jelena Bogdanović Pristov; Sanja Grgurić-Šipka; Ana Popović-Bijelić; Ivan Spasojević
Journal:  Sci Rep       Date:  2018-02-23       Impact factor: 4.379

5.  Elucidation of the interplay between Fe(II), Fe(III), and dopamine with relevance to iron solubilization and reactive oxygen species generation by catecholamines.

Authors:  Yingying Sun; A Ninh Pham; T David Waite
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  5 in total

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