English

Modeling of Nuclear Waste Forms: State-of-the-Art and Perspectives

Computational Physics 2020-10-08 v1

Abstract

Computational modeling is an important aspect of the research on nuclear waste materials. In particular, atomistic simulations, when used complementary to experimental efforts, contribute to the scientific basis of safety case for nuclear waste repositories. Here we discuss the state-of-the-art and perspectives of atomistic modeling for nuclear waste management on a few cases of successful synergy of atomistic simulations and experiments. In particular, we discuss here: (1) the potential of atomistic simulations to investigate the uranium oxidation state in mixed valence uranium oxides and (2) the ability of cementitious barrier materials to retain radionuclides such as 226Ra and 90Sr, and of studtite/metastudtite secondary peroxide phases to incorporate actinides such as Np and Am. The new contribution we make here is the computation of the incorporation of Sr by C-S-H (calcium silicate hydrate) phases.

Keywords

Cite

@article{arxiv.2010.03270,
  title  = {Modeling of Nuclear Waste Forms: State-of-the-Art and Perspectives},
  author = {Piotr. M. Kowalski and Steve Lange and Guido Deissmann and Mengli Sun and Kristina O. Kvashnina and Robert Baker and Philip Kegler and Gabriel Murphy and Dirk Bosbach},
  journal= {arXiv preprint arXiv:2010.03270},
  year   = {2020}
}

Comments

MRS Advances (2020)