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Paper Details


Bibliographic Data:


Code: DBMS13
Paper Type: Article
Author(s): Dulnee S, Banerjee D, Merkel BJ, Scheinost AC
Title: Surface Complexation and Oxidation of SnII by Nanomagnetite
Journal: Environmental Science & Technology
Volume: 47   Year: 2013   Pages: 12852–12859
ISSN-Print: 0013-936X
Internal Storage: V3862
DOI: 10.1021/es402962j
Abstract:

The long-lived fission product 126Sn is of substantial interest in the context of nuclear waste disposal in deep underground repositories. However, the prevalent redox state, the aqueous speciation as well as the reactions at the mineral-water interface under the expected anoxic and reducing conditions are a matter of debate. We therefore investigated the reaction of SnII with a relevant redox-reactive mineral, magnetite (FeIIFeIII2O4) at <2 ppmv O2, and monitored Sn uptake as a function of pH and time. Tin redox state and local structure were investigated by Sn–K X-ray absorption spectroscopy (XAS). We observed a rapid uptake (<30 min) and oxidation of SnII to SnIV by magnetite. The local structure determined by XAS showed two Sn–Fe distances of about 3.15 and 3.60 Å in line with edge and corner sharing arrangements between octahedrally coordinated SnIV and the magnetite surface, indicative of formation of tetradentate inner-sphere complexes between pH 3 and 9. Based on the EXAFS-derived surface structure, we could successfully model the sorption data with two different complexes, (Magn_sO)4SnIV(OH)2–2 (logK2,0–2 −14.97 ± 0.35) prevailing from pH 2 to 9, and (Magn_sO)4SnIV(OH)2Fe (logK2,10 −17.72 ± 0.50), which forms at pH > 9 by coadsorption of FeII, thereby increasing sorption at this high pH.

Comment: SSA; SCM data

Surface Area   |   Site Density / Protolysis   |   Complex Formation   |   Formatted Citation