Molybdenum release from high burnup spent nuclear fuel at alkaline and hyperalkaline pH
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J. Llorca | F. Clarens | D. Serrano‐Purroy | I. Casas | J. Giménez | Sonia García-Gómez | A. Martínez-Torrents | Jakub Kokinda | J. De Pablo | Luis Iglesias
[1] B. Ade,et al. Simultaneous isotopic analysis of fission product Sr, Mo, and Ru in spent nuclear fuel particles by resonance ionization mass spectrometry , 2023, Scientific Reports.
[2] K. Lemmens,et al. Fast release from clad and declad spent UOX PWR fuel segments in a bicarbonate solution under anoxic conditions , 2021, Journal of Nuclear Materials.
[3] J. de Pablo,et al. Contribution of phases segregated from the UO2 matrix to the release of radionuclides from spent nuclear fuel and duration of the Instant Release Fraction (IRF) , 2020 .
[4] J. Schofield,et al. Understanding cementitious backfill interactions with groundwater components , 2020 .
[5] F. Speck,et al. The Electrochemical Dissolution of Noble Metals in Alkaline Media , 2018, Electrocatalysis.
[6] D. Serrano‐Purroy,et al. Influence of the interpellet space to the Instant Release Fraction determination of a commercial UO2 Boiling Water Reactor Spent Nuclear Fuel , 2018 .
[7] D. Serrano‐Purroy,et al. Instant release fraction corrosion studies of commercial UO2 BWR spent nuclear fuel , 2017 .
[8] D. Serrano‐Purroy,et al. Dissolution experiments of commercial PWR (52 MWd/kgU) and BWR (53 MWd/kgU) spent nuclear fuel cladded segments in bicarbonate water under oxidizing conditions. Experimental determination of matrix and instant release fraction , 2015 .
[9] Beatriz Mendoza-Sánchez,et al. Generalized molybdenum oxide surface chemical state XPS determination via informed amorphous sample model. , 2015 .
[10] F. Clarens,et al. Dynamic leaching studies of 48 MWd/kgU UO2 commercial spent nuclear fuel under oxic conditions , 2013 .
[11] P. Grant,et al. An Investigation of Nanostructured Thin Film α-MoO3 Based Supercapacitor Electrodes in an Aqueous Electrolyte , 2013 .
[12] F. Clarens,et al. Instant release fraction and matrix release of high burn-up UO2 spent nuclear fuel: Effect of high burn-up structure and leaching solution composition , 2012 .
[13] Chi-Woo Lee,et al. Molybdenum, molybdenum oxides, and their electrochemistry. , 2012, ChemSusChem.
[14] M. Petrova,et al. Mechanism of anodic oxidation of molybdenum in nearly-neutral electrolytes studied by electrochemical impedance spectroscopy and X-ray photoelectron spectroscopy , 2011 .
[15] Soon-Dal Park,et al. BEHAVIORS OF MOLYBDENUM IN UO2FUEL MATRIX , 2011 .
[16] David O. Scanlon,et al. Theoretical and Experimental Study of the Electronic Structures of MoO3 and MoO2 , 2010 .
[17] S. Ha,et al. X-ray diffraction and photoelectron spectroscopy studies of MoO2 as catalyst for the partial oxidation of isooctane , 2009 .
[18] L. Desgranges,et al. Interpretation of the molybdenum behaviour in irradiated UO2 using a point defect approach , 2008 .
[19] C. Landesman,et al. Reproducibility of the uptake of U(VI) onto degraded cement pastes and calcium silicate hydrate phases , 2004 .
[20] G. Carlot,et al. A study of molybdenum behaviour in UO2 by X-ray absorption spectroscopy , 2004 .
[21] Stefan Röllin,et al. Determination of dissolution rates of spent fuel in carbonate solutions under different redox conditions with a flow-through experiment , 2001 .
[22] C. Catlow,et al. The behaviour of single atoms of molybdenum in urania , 1997 .
[23] L. Thompson,et al. XPS study of as-prepared and reduced molybdenum oxides , 1996 .
[24] N. McIntyre,et al. Thermal reduction of molybdenum trioxide , 1992 .
[25] Jordi Bruno,et al. The kinetics of dissolution of UO2 under reducing conditions and the influence of an oxidized surface layer (UO2+x): Application of a continuous flow-through reactor , 1991 .
[26] R. Wollast,et al. Coordination chemistry of weathering: Kinetics of the surface-controlled dissolution of oxide minerals , 1990 .
[27] H. Kleykamp,et al. The chemical state of the fission products in oxide fuels , 1985 .
[28] C. Pérez-Vicente,et al. Exploring an Aluminum Ion Battery Based on Molybdite as Working Electrode and Ionic Liquid as Electrolyte , 2018 .
[29] Gareth P. Keeley,et al. A comparative study on gold and platinum dissolution in acidic and alkaline media , 2014 .
[30] B. Lothenbach,et al. Mechanisms and Modelling of Waste/Cement Interactions – Survey of Topics Presented at the Meiringen Workshop , 2006 .