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Predicting Radiation-Induced Plutonium Redox Chemistry using Multi-scale Modeling Methods

Research output: Contribution to conferencePresentation

Abstract

Over the the last 70 years plutonium (Pu) has been integral in the development of several technologies that have changed the world, yet our fundamental understanding of its chemistry is still far from complete. This is a testament to this element’s unique and complex properties, such as its ability to coexist as multiple oxidation states in aqueous solution. Careful manipulation of plutonium oxidation states is essential in the study and utilization of its rich chemistry. To achieve this level of control, a comprehensive mechanistic understanding of radiation-induced plutonium redox chemistry is critical due to the unavoidable exposure of plutonium to ionizing radiation fields, both inherent and from in-process applications. For this reason, we have developed an experimentally evaluated multi-scale computer model for the prediction of gamma radiation-induced Pu(IV) redox chemistry in concentrated nitric acid solutions (1.0, 3.0, and 6.0 M). Under these acidic, aqueous solution conditions, cobalt-60 gamma irradiation afforded negligible net change in the steady-state oxidation state distribution of Pu(IV). Multi-scale calculations, which are in excellent agreement with experimental data, indicate that this observation is due to radiation-induced redox cycling between Pu(IV) and Pu(III), as achieved by the reduction of Pu(IV) by radiolytic nitrous acid and hydrogen peroxide, and the oxidation of Pu(III) by nitrate and hydroxyl radicals. These radiation-induced redox processes are augmented by plutonium’s inherent disproportionation reactions.
Original languageEnglish
StatePublished - 2024
EventPlutonium Futures - The Science 2024 - Charleston, United States
Duration: Sep 8 2024Sep 12 2024

Conference

ConferencePlutonium Futures - The Science 2024
Country/TerritoryUnited States
CityCharleston
Period09/8/2409/12/24

Keywords

  • 38 - RADIATION CHEMISTRY, RADIOCHEMISTRY, AND NUCLEAR CHEMISTRY
  • radiation
  • alpha
  • plutonium
  • redox
  • modeling

INL Publication Number

  • INL/CON-24-77098
  • 188041

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