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Transient Radiation-Induced Berkelium(III) and Californium(III) Redox Chemistry in Aqueous Solution

  • Gregory P. Horne
  • , Brian M. Rotermund
  • , Travis S. Grimes
  • , Joseph M. Sperling
  • , David S. Meeker
  • , Peter R. Zalupski
  • , Nicholas Beck
  • , Zachary K. Huffman
  • , Daniela Gomez Martinez
  • , Andrew Beshay
  • , Dean R. Peterman
  • , Bobby H. Layne
  • , Jason Johnson
  • , Andrew R. Cook
  • , Thomas E. Albrecht-Schönzart
  • , Stephen P. Mezyk

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

Despite the significant impact of radiation-induced redox reactions on the accessibility and lifetimes of actinide oxidation states, fundamental knowledge of aqueous actinide metal ion radiation chemistry is limited, especially for the late actinides. A quantitative understanding of these intrinsic radiation-induced processes is essential for investigating the fundamental properties of these actinides. We present here a picosecond electron pulse reaction kinetics study into the radiation-induced redox chemistry of trivalent berkelium (Bk(III)) and californium (Cf(III)) ions in acidic aqueous solutions at ambient temperature. New and first-of-a-kind, second-order rate coefficients are reported for the transient radical-induced reduction of Bk(III) and Cf(III) by the hydrated electron (eaq-) and hydrogen atom (H-), demonstrating a significant reactivity (up to 1011 M-1 s-1) indicative of a preference of these metals to adopt divalent states. Additionally, we report the first-ever second-order rate coefficients for the transient radical-induced oxidation of these elements by a reaction with hydroxyl (-OH) and nitrate (NO3-) radicals, which also exhibited fast reactivity (ca. 108 M-1 s-1). Transient Cf(II), Cf(IV), and Bk(IV) absorption spectra are also reported. Overall, the presented data highlight the existence of rich, complex, intrinsic late actinide radiation-induced redox chemistry that has the potential to influence the findings of other areas of actinide science.

Original languageEnglish
Pages (from-to)10822-10832
Number of pages11
JournalInorganic Chemistry
Volume61
Issue number28
Early online dateJul 1 2022
DOIs
StatePublished - Jul 18 2022

INL Publication Number

  • INL/JOU-22-66647
  • 122582

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