4.8 Article

Antimony and Arsenic Behavior during Fe(II)-Induced Transformation of Jarosite

Journal

ENVIRONMENTAL SCIENCE & TECHNOLOGY
Volume 51, Issue 8, Pages 4259-4268

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.est.6b05335

Keywords

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Funding

  1. Australian Research Council [LP120100238, FT110100130, DP110100519]
  2. Great Lakes Council
  3. Port Macquarie Hastings Council
  4. Division of Research, Southern Cross University
  5. Environmental Analysis Laboratory (EAL) which is a Southern Cross University NATA accredited research support facility
  6. Australian Research Council [LP120100238, FT110100130] Funding Source: Australian Research Council

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Jarosite can be an important scavenger for arsenic (As) and antimony (Sb) in acid mine drainage (AMD) and acid sulfate soil (ASS) environments. When subjected to reducing conditions, jarosite may undergo reductive dissolution, thereby releasing As, Sb, and Fe2+ coincident with a rise in pH. These conditions can also trigger the Fe2+-induced transformation of jarosite to more stable Fe(III) minerals, such as goethite. However, the consequences of this transformation process for As and Sb are yet to be methodically examined. We explore the effects of abiotic Fez.-induced transformation of jarosite on the mobility, speciation, and partitioning of associated As(V) and Sb(V) under anoxic conditions at pH 7. High, concentrations of Fe2+ (10 and 20 mM) rapidly (<10 min) transformed jarosite to a green rust intermediary, prior to the subsequent precipitation of goethite within 24 h. In contrast, lower concentrations of Fe2+ (1 and 5 mM) led :to the formation of lepidocrocite. As Kedge XANES spectroscopy revealed some reduction of As(V) to As(III) at higher concentrations of Fe2+, while Sb L-1-edge XANES spectroscopy indicated no reduction of Sb(V). The transformation processes enhanced Sb mobilization into the aqueous phase, while As was instead repartitioned to a surface-bound exchangeable phase. The results imply that Fe2+-induced transformation of As/Sbjatosite can increase Sb mobility and exert major influences on As partitioning and speciation.

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