The Role of Water and Hydroxyl Groups in the Structures of Stetindite and Coffinite, MSiO<sub>4</sub> (M = Ce, U)

Andrew Strzelecki, Thomas Barral, Paul Estevenon, Adel Mesbah, Vitaliy G. Goncharov, Jason Baker, Jianming Bai, Nicolas Clavier, Stéphanie Szenknect, Hongwu Xu,

Inorganic Chemistry · 2021 · 23 citations · 104 references

DOIFull text

Open access

Abstract

Orthosilicates adopt the zircon structure types (<i>I</i>4<sub>1</sub><i>/amd</i>), consisting of isolated SiO<sub>4</sub> tetrahedra joined by A-site metal cations, such as Ce and U. They are of significant interest in the fields of geochemistry, mineralogy, nuclear waste form development, and material science. Stetindite (CeSiO<sub>4</sub>) and coffinite (USiO<sub>4</sub>) can be formed under hydrothermal conditions despite both being thermodynamically metastable. Water has been hypothesized to play a significant role in stabilizing and forming these orthosilicate phases, though little experimental evidence exists. To understand the effects of hydration or hydroxylation on these orthosilicates, <i>in situ</i> high-temperature synchrotron and laboratory-based X-ray diffraction was conducted from 25 to ∼850 °C. Stetindite maintains its <i>I</i>4<sub>1</sub><i>/amd</i> symmetry with increasing temperature but exhibits a discontinuous expansion along the <i>a-</i>axis during heating, presumably due to the removal of water confined in the [001] channels, which shrink against thermal expansion along the <i>a</i>-axis. Additional <i>in situ</i> high-temperature Raman and Fourier transform infrared spectroscopy also confirmed the presence of the confined water. Coffinite was also found to expand nonlinearly up to 600 °C and then thermally decompose into a mixture of UO<sub>2</sub> and SiO<sub>2</sub>. A combination of dehydration and dehydroxylation is proposed for explaining the thermal behavior of coffinite synthesized hydrothermally. Additionally, we investigated high-temperature structures of two coffinite-thorite solid solutions, uranothorite (U<sub><i>x</i></sub>Th<sub>1-<i>x</i></sub>SiO<sub>4</sub>), which displayed complex variations in composition during heating that was attributed to the negative enthalpy of mixing. Lastly, for the first time, the coefficients of thermal expansion of CeSiO<sub>4</sub>, USiO<sub>4</sub>, U<sub>0.46</sub>Th<sub>0.54</sub>SiO<sub>4</sub>, and U<sub>0.9</sub>Th<sub>0.1</sub>SiO<sub>4</sub> were determined to be α<sub>V</sub> = 14.49 × 10<sup>-6</sup>, 14.29 × 10<sup>-6</sup>, 17.21 × 10<sup>-6</sup>, and 17.23 × 10<sup>-6</sup> °C<sup>-1</sup>, respectively.

References

104