Inorganic Chemistry · 2021 · 15 citations · 40 references
Single-crystal X-ray diffraction studies of pristine and γ-irradiated Ca<sub>2</sub>[UO<sub>2</sub>(O<sub>2</sub>)<sub>3</sub>]·9H<sub>2</sub>O reveal site-specific atomic-scale changes during the solid-state progression from a crystalline to X-ray amorphous state with increasing dose. Following γ-irradiation to 1, 1.5, and 2 MGy, the peroxide group not bonded to Ca<sup>2+</sup> is progressively replaced by two hydroxyl groups separated by 2.7 Å (with minor changes in the unit cell), whereas the peroxide groups bonded to Ca<sup>2+</sup> cations are largely unaffected by irradiation prior to amorphization, which occurs by a dose of 3 MGy. The conversion of peroxide to hydroxyl occurs through interaction of neighboring lattice H<sub>2</sub>O molecules and ionization of the peroxide O-O bond, which produces two hydroxyls, and allows isolation of the important monomer building block, UO<sub>2</sub>(O<sub>2</sub>)<sub>2</sub>(OH)<sub>2</sub><sup>4-</sup>, that is ubiquitous in uranyl capsule polyoxometalates. Steric crowding in the equatorial plane of the uranyl ion develops and promotes transformation to an amorphous phase. In contrast, γ-irradiation of solid Li<sub>4</sub>[(UO<sub>2</sub>)(O<sub>2</sub>)<sub>3</sub>]·10H<sub>2</sub>O results in a solid-state transformation to a well-crystallized peroxide-free uranyl oxyhydrate containing sheets of equatorial edge and vertex-sharing uranyl pentagonal bipyramids with likely Li and H<sub>2</sub>O in interlayer positions. The irradiation products of these two uranyl triperoxide monomers are compared via X-ray diffraction (single-crystal and powder) and Raman spectroscopy, with a focus on the influence of the Li<sup>+</sup> and Ca<sup>2+</sup> countercations. Highly hydratable and mobile Li<sup>+</sup> yields to uranyl hydrolysis reactions, while Ca<sup>2+</sup> provides lattice rigidity, allowing observation of the first steps of radiation-promoted transformation of uranyl triperoxide.
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Materials challenges in nuclear energy
S.J. Zinkle, Gary S. Was · Acta Materialia · 2013 · 2.4K citations
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