Аннотация

CeO₂ is key in catalysis, fuel cells, chemical mechanical planarization, and oxygen storage due to its Ce⁴⁺ / Ce³⁺ redox couple and oxygen mobility. At the nanoscale, properties become morphology-dependent, yet the link between morphology and mechanical behavior‒particularly elastic properties and defect structure‒remains underexplored. Here we investigate four CeO₂ morphologies (nanoparticles, spherulites, intermediate rods, and long rods) using XRD line profile analysis, bond valence sum (BVS) calculations, and DFT+U. Rietveld-refined lattice parameters serve as direct DFT inputs. Four Williamson-Hall models quantify crystallite size, microstrain, dislocation density, and character, with DFT-computed direction-dependent Young’s moduli and contrast factors. Results show bulk (≈169 GPa), shear (≈58.8 GPa), and Young’s (≈158 GPa) moduli remain constant within uncertainty across morphologies. The high dislocation densities (up to 10¹⁵ m⁻²) represent a small volume fraction (≈0.03 %) and do not appreciably alter the effective polycrystalline moduli. In contrast, defect structure varies dramatically: dislocation density increases from 10¹¹ to 10¹⁵ m⁻², transitioning from screw-dominated to mixed / edge character with aspect ratio. Oxygen displacement parameters (Uiso, O = 0.0136 – 0.0669 A²) peak in rods, indicating enhanced anionic disorder, while BVS (4.71– 4.75 v.u.) reveals compressed Ce-O bonds. These findings demonstrate that defect populations are morphology-dependent, enabling independent optimization for catalysis, chemical mechanical planarization (CMP), solid oxide fuel cells (SOFCs), and coatings, while the mechanical backbone of CeO2 remains unchanged.
Финансирование на английском языке
1. Tecnológico Nacional de México - 6824.18.P.