Javascript must be enabled to continue!
Neptunium(V) and Uranium(VI) Reactions at the Magnetite (111) Surface
View through CrossRef
Neptunium and uranium are important radionuclides in many aspects of the nuclear fuel cycle and are often present in radioactive wastes which require long term management. Understanding the environmental behaviour and mobility of these actinides is essential in underpinning remediation strategies and safety assessments for wastes containing these radionuclides. By combining state-of-the-art X-ray techniques (synchrotron-based Grazing Incidence XAS, and XPS) with wet chemistry techniques (ICP-MS, liquid scintillation counting and UV-Vis spectroscopy), we determined that contrary to uranium(VI), neptunium(V) interaction with magnetite is not significantly affected by the presence of bicarbonate. Uranium interactions with a magnetite surface resulted in XAS and XPS signals dominated by surface complexes of U(VI), while neptunium on the surface of magnetite was dominated by Np(IV) species. UV-Vis spectroscopy on the aqueous Np(V) species before and after interaction with magnetite showed different speciation due to the presence of carbonate. Interestingly, in the presence of bicarbonate after equilibration with magnetite, an unknown aqueous NpO2+ species was detected using UV-Vis spectroscopy, which we postulate is a ternary complex of Np(V) with carbonate and (likely) an iron species. Regardless, the Np speciation in the aqueous phase (Np(V)) and on the magnetite (111) surfaces (Np(IV)) indicate that with and without bicarbonate the interaction of Np(V) with magnetite proceeds via a surface mediated reduction mechanism. Overall, the results presented highlight the differences between uranium and neptunium interaction with magnetite, and reaffirm the potential importance of bicarbonate present in the aqueous phase.
Title: Neptunium(V) and Uranium(VI) Reactions at the Magnetite (111) Surface
Description:
Neptunium and uranium are important radionuclides in many aspects of the nuclear fuel cycle and are often present in radioactive wastes which require long term management.
Understanding the environmental behaviour and mobility of these actinides is essential in underpinning remediation strategies and safety assessments for wastes containing these radionuclides.
By combining state-of-the-art X-ray techniques (synchrotron-based Grazing Incidence XAS, and XPS) with wet chemistry techniques (ICP-MS, liquid scintillation counting and UV-Vis spectroscopy), we determined that contrary to uranium(VI), neptunium(V) interaction with magnetite is not significantly affected by the presence of bicarbonate.
Uranium interactions with a magnetite surface resulted in XAS and XPS signals dominated by surface complexes of U(VI), while neptunium on the surface of magnetite was dominated by Np(IV) species.
UV-Vis spectroscopy on the aqueous Np(V) species before and after interaction with magnetite showed different speciation due to the presence of carbonate.
Interestingly, in the presence of bicarbonate after equilibration with magnetite, an unknown aqueous NpO2+ species was detected using UV-Vis spectroscopy, which we postulate is a ternary complex of Np(V) with carbonate and (likely) an iron species.
Regardless, the Np speciation in the aqueous phase (Np(V)) and on the magnetite (111) surfaces (Np(IV)) indicate that with and without bicarbonate the interaction of Np(V) with magnetite proceeds via a surface mediated reduction mechanism.
Overall, the results presented highlight the differences between uranium and neptunium interaction with magnetite, and reaffirm the potential importance of bicarbonate present in the aqueous phase.
Related Results
Uranium and Thorium
Uranium and Thorium
Abstract
Uranium is a heavy, radioactive metal, the 92nd element in the periodic table, and a member of the actinide series. Its name and chemical symbol U are de...
Neptunium(V) Incorporation/Sorption with Uranium(VI) Alteration Products
Neptunium(V) Incorporation/Sorption with Uranium(VI) Alteration Products
AbstractAn initial uranium phase that has been observed to form during the corrosion of spent nuclear fuel is the uranium oxy-hydroxide metaschoepite. It has been proposed that nep...
Giant Magnetocapacitance in Magnetic Polypyrrole/Magnetite Nanocomposites under Low Magnetic Field
Giant Magnetocapacitance in Magnetic Polypyrrole/Magnetite Nanocomposites under Low Magnetic Field
Electrochemical capacitors have attracted significant attention for their promising potential applications ranging from portable electronic devices to hybrid electrical vehicles an...
CRITICALITY ANALYSIS OF URANIUM STORAGE FACILITY WITH FORMATION RACKS
CRITICALITY ANALYSIS OF URANIUM STORAGE FACILITY WITH FORMATION RACKS
Uranium materials are needed for the uranium fuel production of research reactors and radioisotope. Before the uranium material is used, it is stored in the storage facility. One o...
Major and Trace Elements of Magnetite from the Qimantag Metallogenic Belt: Insights into Evolution of Ore–forming Fluids
Major and Trace Elements of Magnetite from the Qimantag Metallogenic Belt: Insights into Evolution of Ore–forming Fluids
AbstractMagnetite, as a genetic indicator of ores, has been studied in various deposits in the world. In this paper, we present textural and compositional data of magnetite from th...
Uranium Provinces in China
Uranium Provinces in China
Abstract Three uranium provinces are recognized in China, the Southeast China uranium province, the Northeast China‐Inner Mongolia uranium province and the Northwest China (Xinjia...
Urinary Uranium Levels in Cancer Patients and Healthy Residents Living in Uranium Legacy-Affected Areas: A Comparative Study
Urinary Uranium Levels in Cancer Patients and Healthy Residents Living in Uranium Legacy-Affected Areas: A Comparative Study
Uranium is a naturally occurring radioactive heavy metal, and drinking water and food are the primary sources of non-occupational exposure for the general population. The aim of th...
Textural and Geochemical Evidence for Magnetite Production upon Antigorite Breakdown During Subduction
Textural and Geochemical Evidence for Magnetite Production upon Antigorite Breakdown During Subduction
AbstractMagnetite stability in ultramafic systems undergoing subduction plays a major role in controlling redox states of the fluids liberated upon dehydration reactions, as well a...

