材料科学
立方氧化锆
固溶体
氧化物
相(物质)
扩散
氧气储存
化学工程
不稳定性
催化作用
化学物理
动力学
热力学
化学
冶金
陶瓷
机械
工程类
生物化学
有机化学
物理
量子力学
作者
Seol Hee Oh,Hyun-Kyu Kim,Jason Kim,Yeong-Cheol Kim,Sun‐Young Park,Sungeun Yang,Ho‐Il Ji,Kyung Joong Yoon,Ji‐Won Son,Jong‐Ho Lee
出处
期刊:JPhys energy
[IOP Publishing]
日期:2022-08-17
卷期号:4 (4): 045004-045004
被引量:2
标识
DOI:10.1088/2515-7655/ac8a76
摘要
Abstract Solid solution CeO 2 –ZrO 2 has long been used as a non-noble metal oxide promoter for three-way catalysts owing to its high oxygen storage capacity. However, the stability issue of the CeO 2 –ZrO 2 has been controversial for a long time. In particular, the phenomena observed by phase instability are so diverse and inconsistent that the related causal analysis is still a matter of debate. In this study, for the first time, it was demonstrated theoretically and experimentally that a Ce 0.75 Zr 0.25 O 2 (CZO) solid solution must be completely separated into CeO 2 and ZrO 2 phases owing to its inherent thermodynamic instability. According to an extensive evaluation via defect chemical calculations and well-controlled model experiments with grain-boundary-free epitaxial thin film samples, CZO materials undergo phase separation until they are completely separated, and the separation rate is particularly high in a reducing atmosphere. The underlying inherent stability problem and enhanced phase separation kinetics of the CZO material are attributed to the enhanced cation diffusion in a reducing atmosphere, where more mobile cationic defects (interstitial cations) are generated and an easier pathway with a lower migration energy is available.
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