Communications Materials (Dec 2024)

The role of redox and structure on grain growth in Mn-doped UO2

  • Gabriel L. Murphy,
  • Elena Bazarkina,
  • André Rossberg,
  • Clara L. Silva,
  • Lucia Amidani,
  • Andrey Bukaemskiy,
  • Robert Thümmler,
  • Martina Klinkenberg,
  • Maximilian Henkes,
  • Julien Marquardt,
  • Jessica Lessing,
  • Volodymyr Svitlyk,
  • Christoph Hennig,
  • Kristina O. Kvashnina,
  • Nina Huittinen

DOI
https://doi.org/10.1038/s43246-024-00714-x
Journal volume & issue
Vol. 5, no. 1
pp. 1 – 12

Abstract

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Abstract Mn-doped UO2 is considered a potential advanced nuclear fuel due to ameliorated microstructural grain growth compared to non-doped variants. However, recent experimental investigations have highlighted limitations in grain growth apparently arising from misunderstandings of its redox-structural chemistry. To resolve this, we use synchrotron X-ray diffraction and spectroscopy measurements supported by ab initio calculations to cross-examine the redox and structural chemistry of Mn-doped UO2 single crystal grains and ceramic specimens. Measurements reveal Mn enters the UO2 matrix divalently as $$({{{Mn}}}_{x}^{+2}{{U}}_{1-x}^{+4}){{O}_{2-x}}$$ ( M n x + 2 U 1 − x + 4 ) O 2 − x with the additional formation of fluorite Mn+2O in the bulk material. Extended X-ray absorption near edge structure measurements unveil that during sintering, the isostructural relationship between fluorite UO2 and Mn+2O results in inadvertent interaction and subsequent incorporation of diffusing U species within MnO, rather than neighbouring UO2 grains, inhibiting grain growth. The investigation consequently highlights the significance of considering total redox-structural chemistry of main and minor phases in advanced ceramic material design.