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Reductive Sequestration of Pertechnetate (99TcO4) by Nano Zerovalent Iron (nZVI) Transformed by Abiotic Sulfide
Author(s) -
Dimin Fan,
Roberto P. Anitori,
Bradley M. Tebo,
Paul G. Tratnyek,
Juan S. Lezama-Pacheco,
Ravi Kukkadapu,
Mark Engelhard,
Mark Bowden,
Libor Kovařík,
Bruce W. Arey
Publication year - 2013
Publication title -
environmental science and technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.851
H-Index - 397
eISSN - 1520-5851
pISSN - 0013-936X
DOI - 10.1021/es304829z
Subject(s) - zerovalent iron , sulfide , mackinawite , chemistry , iron sulfide , inorganic chemistry , nuclear chemistry , oxyanion , pertechnetate , environmental remediation , sulfide minerals , technetium , sulfur , adsorption , catalysis , contamination , ecology , biochemistry , organic chemistry , biology
Under anoxic conditions, soluble pertechnetate (⁹⁹TcO₄⁻) can be reduced to less soluble TcO₂·nH₂O, but the oxide is highly susceptible to reoxidation. Here we investigate an alternative strategy for remediation of Tc-contaminated groundwater whereby sequestration as Tc sulfide is favored by sulfidic conditions stimulated by nano zerovalent iron (nZVI). nZVI was pre-exposed to increasing concentrations of sulfide in simulated Hanford groundwater for 24 h to mimic the onset of aquifer biotic sulfate reduction. Solid-phase characterizations of the sulfidated nZVI confirmed the formation of nanocrystalline FeS phases, but higher S/Fe ratios (>0.112) did not result in the formation of significantly more FeS. The kinetics of Tc sequestration by these materials showed faster Tc removal rates with increasing S/Fe between 0 and 0.056, but decreasing Tc removal rates with S/Fe > 0.224. The more favorable Tc removal kinetics at low S/Fe could be due to a higher affinity of TcO₄⁻ for FeS than iron oxides, and electron microscopy confirmed that the majority of the Tc was associated with FeS phases. The inhibition of Tc removal at high S/Fe appears to have been caused by excess HS(-). X-ray absorption spectroscopy revealed that as S/Fe increased, the pathway for Tc(IV) formation shifted from TcO₂·nH2₂ to Tc sulfide phases. The most substantial change of Tc speciation occurred at low S/Fe, coinciding with the rapid increase in Tc removal rate. This agreement further confirms the importance of FeS in Tc sequestration.

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