Issue 38, 2025

Enhancing the hydrothermal aging resistance of alumina-toughened zirconia via cerium oxide doping

Abstract

This study investigates the influence of cerium oxide (CeO2) doping on the densification, microstructure, mechanical properties, and hydrothermal aging resistance of alumina-toughened zirconia (ATZ) ceramics. ATZ composites with 0–1 wt% CeO2 were synthesized and sintered at 1250–1500 °C. Results showed that CeO2 doping significantly enhanced densification, with the highest relative density (∼92.1%) achieved at 0.2 wt% CeO2 and 1500 °C. Microstructural analysis revealed refined, equiaxed grains without secondary phase formation, and EDX confirmed uniform Ce distribution within the zirconia matrix. Vickers hardness increased with both sintering temperature and Ce content, peaking at 12.18 GPa for 0.2 wt% CeO2. Hydrothermal aging tests (180 °C, 10 bar, 100 h) demonstrated that CeO2 effectively suppressed the tetragonal-to-monoclinic phase transformation, reducing monoclinic content from ∼31.7% in undoped ATZ to ∼9.6% in the 0.2 wt% sample. SEM analysis corroborated these trends, showing severe surface degradation in undoped samples and minimal damage in optimally doped ones. These findings establish 0.1–0.2 wt% CeO2 as the optimal range for enhancing the long-term structural and mechanical stability of ATZ ceramics for biomedical applications.

Graphical abstract: Enhancing the hydrothermal aging resistance of alumina-toughened zirconia via cerium oxide doping

Article information

Article type
Paper
Submitted
14 May 2025
Accepted
02 Sep 2025
First published
17 Sep 2025

Nanoscale, 2025,17, 22248-22259

Enhancing the hydrothermal aging resistance of alumina-toughened zirconia via cerium oxide doping

M. Abbas, T. A. Mare, L. Ghazal, S. Makeen, R. Mohamed and M. Al-Ejji, Nanoscale, 2025, 17, 22248 DOI: 10.1039/D5NR01999K

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