Thermodynamic Stabilization of Hydrous Ferric Oxide by Adsorption of Phosphate and Arsenate

Juraj Majzlan*
Institute of Geosciences, Burgweg 11, Friedrich-Schiller University, D-07749 Jena, Germany
Environ. Sci. Technol., 2011, 45 (11), pp 4726–4732
DOI: 10.1021/es1040249
Publication Date (Web): May 10, 2011
Copyright © 2011 American Chemical Society

Abstract

Abstract Image

Hydrous ferric oxide (HFO) is an X-ray amorphous compound with a high affinity for anions under strongly or mildly acidic conditions. Because of the usually small particle size of HFO, the adsorption capacity is high and adsorption may significantly impact the thermodynamic properties of such materials. Here we show that adsorption of phosphate and arsenate stabilizes HFO by experimental determination of enthalpies of formation (by acid-solution calorimetry) and estimates of standard entropies for six phosphate- or arsenate-enriched HFO samples. At pH values lower than 5, the phosphate-doped HFO is not only less soluble than ferrihydrite (anion-free HFO) but also crystalline FeOOH polymorphs feroxyhyte and lepidocrocite. The arsenate-doped HFO is also stabilized with respect to the ferrihydrite. Phosphate availability in soils can be controlled by the phosphate-enriched HFO which is many orders of magnitude less soluble than apatite or crystalline Fe(III) phosphates, for example strengite (FePO4·2H2O). Thermodynamic dissolution models for scorodite (FeAsO4·2H2O) and As-enriched HFO show that under mildly acidic or circumneutral conditions, scorodite dissolves, As-HFO precipitates, and a substantial amount of As(V) is released into the aqueous solution (at pH 7, log m(As) −2.5). The data presented in this paper can be used to model the equilibrium concentration of Fe(III), P(V), or As(V) in soil solutions or in natural or anthropogenic sediments polluted by arsenic.

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History

  • Published In Issue June 01, 2011
  • Article ASAPMay 10, 2011
  • Received: December 01, 2010
    Accepted: May 02, 2011
    Revised: April 19, 2011

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