4.8 Article

Redox Properties of Structural Fe in Clay Minerals. 2. Electrochemical and Spectroscopic Characterization of Electron Transfer Irreversibility in Ferruginous Smectite, SWa-1

Journal

ENVIRONMENTAL SCIENCE & TECHNOLOGY
Volume 46, Issue 17, Pages 9369-9377

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/es302014u

Keywords

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Funding

  1. Swiss National Science Foundation [200021-129476/1]
  2. NAGRA [7246, 9009]
  3. Swiss National Science Foundation (SNF) [200021_129476] Funding Source: Swiss National Science Foundation (SNF)

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Structural Fe in clay minerals is an important, albeit poorly characterized, redox-active phase found in many natural and engineered environments. This work develops an experimental approach to directly assess the redox properties of a natural Fe-bearing smectite (ferruginous smectite, SWa-1, 12.6 wt % Fe) with mediated electrochemical reduction (MER) and oxidation (MEO). By utilizing a suite of one-electron-transfer mediating compounds to facilitate electron transfer between structural Fe in SWa-1 and a working electrode, we show that the Fe2+/Fe3+ couple in SWa-1 is redox-active over a large range of potentials (from E-H = -0.63 V to +0.61 V vs SHE). Electrochemical and spectroscopic analyses of SWa-1 samples that were subject to reduction and re-oxidation cycling revealed both reversible and irreversible structural Fe rearrangements that altered the observed apparent standard reduction potential (E-H(phi)) of structural Fe. E-H(phi)-values vary by as much as 0.56 V between SWa-1 samples with different redox histories. The wide range of E-H-values over which SWa-1 is redox-active and redox history-dependent E-H(phi)-values underscore the importance of Fe-bearing clay minerals as redox-active phases in a wide range of redox regimes.

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