The reductive dissolution of hematite (α-Fe2O3) was investigated in a flow-through system using AH2DS, a reduced form of anthraquinone-2,6-disulfonate (AQDS), which is often used as a model electron shuttling compound in studies of dissimilatory microbial reduction of iron oxides. Influent flow rate, pH, and Fe(II) and phosphate concentrations were varied to investigate the redox kinetics in a flow-through reactor. The hematite reduction rates decreased with increasing pH from 4.5 to 7.6 and decreased with decreasing flow rate. The rates also decreased with increasing influent concentration of Fe(II) or phosphate that formed surface complexes at the experimental pH. Mineral surface properties, Fe(II) complexation reactions, and AQDS sorptio...
In many soils, sediments and groundwaters, ferric iron is a major potential electron acceptor for th...
Dissimilatory iron-reducing bacteria (DIRB) couple the oxidation of organic matter or H2 to the redu...
In many soils, sediments and groundwaters, ferric iron is a major potential electron acceptor for th...
The reductive dissolution of hematite (α-Fe2O3) was investigated in a flow-through system using AH2D...
The kinetics and mechanism of reductive dissolution of Fe(III) oxides were examined in pure, batch c...
The kinetics and mechanism of reductive dissolution of Fe(III) oxides were examined in pure, batch c...
Bioreduced anthraquinone-2,6-disulfonate (AH2DS; dihydro-anthraquinone) was reacted with a 2-line, S...
This paper presents and validates a new paradigm for modeling complex biogeochemical systems using a...
Our research focused on (1) microbial reduction of Fe(III) and U(VI) individually, and concomitantly...
This paper presents and validates a new paradigm for modeling complex biogeochemical systems using a...
This paper presents and validates a new paradigm for modeling complex biogeochemical systems using a...
Abstract—This paper presents and validates a new paradigm for modeling complex biogeochemical system...
Bioreduced anthraquinone-2,6-disulfonate (AH2DS; dihydro-anthraquinone) was reacted with a 2-line, S...
In many soils, sediments and groundwaters, ferric iron is a major potential electron acceptor for th...
Dissimilatory iron-reducing bacteria (DIRB) couple the oxidation of organic matter or H2 to the redu...
In many soils, sediments and groundwaters, ferric iron is a major potential electron acceptor for th...
Dissimilatory iron-reducing bacteria (DIRB) couple the oxidation of organic matter or H2 to the redu...
In many soils, sediments and groundwaters, ferric iron is a major potential electron acceptor for th...
The reductive dissolution of hematite (α-Fe2O3) was investigated in a flow-through system using AH2D...
The kinetics and mechanism of reductive dissolution of Fe(III) oxides were examined in pure, batch c...
The kinetics and mechanism of reductive dissolution of Fe(III) oxides were examined in pure, batch c...
Bioreduced anthraquinone-2,6-disulfonate (AH2DS; dihydro-anthraquinone) was reacted with a 2-line, S...
This paper presents and validates a new paradigm for modeling complex biogeochemical systems using a...
Our research focused on (1) microbial reduction of Fe(III) and U(VI) individually, and concomitantly...
This paper presents and validates a new paradigm for modeling complex biogeochemical systems using a...
This paper presents and validates a new paradigm for modeling complex biogeochemical systems using a...
Abstract—This paper presents and validates a new paradigm for modeling complex biogeochemical system...
Bioreduced anthraquinone-2,6-disulfonate (AH2DS; dihydro-anthraquinone) was reacted with a 2-line, S...
In many soils, sediments and groundwaters, ferric iron is a major potential electron acceptor for th...
Dissimilatory iron-reducing bacteria (DIRB) couple the oxidation of organic matter or H2 to the redu...
In many soils, sediments and groundwaters, ferric iron is a major potential electron acceptor for th...
Dissimilatory iron-reducing bacteria (DIRB) couple the oxidation of organic matter or H2 to the redu...
In many soils, sediments and groundwaters, ferric iron is a major potential electron acceptor for th...