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Molecular Hydrogen Yields from the α-Self-Radiolysis of Nitric Acid Solutions Containing Plutonium or Americium.

作者信息

Gregson Colin R, Horne Gregory P, Orr Robin M, Pimblott Simon M, Sims Howard E, Taylor Robin J, Webb Kevin J

机构信息

Central Laboratory , National Nuclear Laboratory , Sellafield, Seascale , Cumbria CA20 1PG , U.K.

Dalton Cumbrian Facility , University of Manchester , Westlakes, Moor Row, Whitehaven CA24 3HA , U.K.

出版信息

J Phys Chem B. 2018 Mar 8;122(9):2627-2634. doi: 10.1021/acs.jpcb.7b12267. Epub 2018 Feb 22.

Abstract

The yield of molecular hydrogen, as a function of nitric acid concentration, from the α-radiolysis of aerated nitric acid and its mixtures with sulfuric acid containing plutonium or americium has been investigated. Comparison of experimental measurements with predictions of a Monte Carlo radiation track chemistry model shows that, in addition to scavenging of the hydrated electron, its precursor, and the hydrogen atom, the quenching of excited state water is important in controlling the yield of molecular hydrogen. In addition, increases in solution acidity cause a significant change in the track reactions, which can be explained as resulting from scavenging of e by H to form H. Although plutonium has been shown to be an effective scavenger of precursors of molecular hydrogen below 0.1 mol dm nitrate, previously reported effects of plutonium on G(H) between 1 and 10 mol dm nitric acid were not reproduced. Modeling results suggest that plutonium is unlikely to effectively compete with nitrate ions in scavenging the precursors of molecular hydrogen at higher nitric acid concentrations, and this was confirmed by comparing molecular hydrogen yields from plutonium solutions with those from americium solutions. Finally, comparison between radionuclide, ion accelerator experiments, and model predictions leads to the conclusion that the high dose rate of accelerator studies does not significantly affect the measured molecular hydrogen yield. These reactions provide insight into the important processes for liquors common in the reprocessing of spent nuclear fuel and the storage of highly radioactive liquid waste prior to vitrification.

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