| Literature DB >> 31594343 |
M A Chaika1, R Tomala1, W Strek1, D Hreniak1, P Dluzewski2, K Morawiec2, P V Mateychenko3, A G Fedorov3, A G Doroshenko3, S V Parkhomenko3, K Lesniewska-Matys4, D Podniesinski4, A Kozłowska4, G Mancardi5, O M Vovk3.
Abstract
This paper focuses on the kinetics of Cr4+ formation in Cr,Ca:YAG ceramics prepared by solid-state reaction sintering. The kinetics of Cr4+ formation was studied by annealing of Cr,Ca:YAG ceramics in ambient air under different temperatures at different times, resulting in the transformation of Cr3+ to Cr4+. The activation energy (Ea) of Cr3+ oxidation determined by the Jander model was 2.7 ± 0.2 eV, which is in good correlation with the activation energy of innergrain oxygen diffusion in the YAG lattice. It is concluded that Cr3+ to Cr4+ transformation in YAG ceramics is limited by oxygen diffusion through the grain body. It was established that in Cr,Ca:YAG ceramics, the intralattice cation exchange, in which the Cr4+ ions exchange positions with the Al3+ ions, switching from "A" to "D" sites, is faster than Cr3+ to Cr4+ oxidation. In the temperature range of 900-1300 °C, the reaction enthalpy of Al3+/Cr4+ ion exchange between octahedral "A" and tetrahedral "D" lattice sites is close to zero, and this exchange ratio is thermodynamically driven by entropy.Entities:
Year: 2019 PMID: 31594343 DOI: 10.1063/1.5118321
Source DB: PubMed Journal: J Chem Phys ISSN: 0021-9606 Impact factor: 3.488