Literature DB >> 34882383

Fe(II) Induced Reduction of Incorporated U(VI) to U(V) in Goethite.

Olwen Stagg1, Katherine Morris1, Andy Lam2, Alexandra Navrotsky3, Jesús M Velázquez4, Bianca Schacherl5, Tonya Vitova5, Jörg Rothe5, Jurij Galanzew5, Anke Neumann6, Paul Lythgoe7, Liam Abrahamsen-Mills8, Samuel Shaw1.   

Abstract

Over 60 years of nuclear activities have resulted in a global legacy of radioactive wastes, with uranium considered a key radionuclide in both disposal and contaminated land scenarios. With the understanding that U has been incorporated into a range of iron (oxyhydr)oxides, these minerals may be considered a secondary barrier to the migration of radionuclides in the environment. However, the long-term stability of U-incorporated iron (oxyhydr)oxides is largely unknown, with the end-fate of incorporated species potentially impacted by biogeochemical processes. In particular, studies show that significant electron transfer may occur between stable iron (oxyhydr)oxides such as goethite and adsorbed Fe(II). These interactions can also induce varying degrees of iron (oxyhydr)oxide recrystallization (<4% to >90%). Here, the fate of U(VI)-incorporated goethite during exposure to Fe(II) was investigated using geochemical analysis and X-ray absorption spectroscopy (XAS). Analysis of XAS spectra revealed that incorporated U(VI) was reduced to U(V) as the reaction with Fe(II) progressed, with minimal recrystallization (approximately 2%) of the goethite phase. These results therefore indicate that U may remain incorporated within goethite as U(V) even under iron-reducing conditions. This develops the concept of iron (oxyhydr)oxides acting as a secondary barrier to radionuclide migration in the environment.

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Keywords:  Fe(II); HR-XANES; U(VI,V); XAS; iron (oxyhydr)oxides

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Year:  2021        PMID: 34882383     DOI: 10.1021/acs.est.1c06197

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  1 in total

1.  Persistence of the Isotopic Signature of Pentavalent Uranium in Magnetite.

Authors:  Zezhen Pan; Yvonne Roebbert; Aaron Beck; Barbora Bartova; Tonya Vitova; Stefan Weyer; Rizlan Bernier-Latmani
Journal:  Environ Sci Technol       Date:  2022-01-21       Impact factor: 9.028

  1 in total

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