微观结构
尖晶石
烧结
材料科学
相(物质)
复合数
渗透
氧气
钴
复合材料
离子电导率
膜
化学工程
渗流阈值
化学
冶金
电阻率和电导率
物理化学
有机化学
生物化学
电气工程
电极
电解质
工程类
作者
Liudmila Fischer,Ke Ran,Christina Schmidt,Kerstin Neuhaus,Stefan Baumann,Patrick Behr,Joachim Mayer,H.J.M. Bouwmeester,Arian Nijmeijer,Olivier Guillon,Wilhelm A. Meulenberg
出处
期刊:Membranes
[Multidisciplinary Digital Publishing Institute]
日期:2023-04-29
卷期号:13 (5): 482-482
被引量:2
标识
DOI:10.3390/membranes13050482
摘要
Dual-phase membranes are increasingly attracting attention as a solution for developing stable oxygen permeation membranes. Ce0.8Gd0.2O2-δ-Fe3-xCoxO4 (CGO-F(3-x)CxO) composites are one group of promising candidates. This study aims to understand the effect of the Fe/Co-ratio, i.e., x = 0, 1, 2, and 3 in Fe3-xCoxO4, on microstructure evolution and performance of the composite. The samples were prepared using the solid-state reactive sintering method (SSRS) to induce phase interactions, which determines the final composite microstructure. The Fe/Co ratio in the spinel structure was found to be a crucial factor in determining phase evolution, microstructure, and permeation of the material. Microstructure analysis showed that all iron-free composites had a dual-phase structure after sintering. In contrast, iron-containing composites formed additional phases with a spinel or garnet structure which likely contributed to electronic conductivity. The presence of both cations resulted in better performance than that of pure iron or cobalt oxides. This demonstrated that both types of cations were necessary to form a composite structure, which then allowed sufficient percolation of robust electronic and ionic conducting pathways. The maximum oxygen flux is jO2 = 0.16 and 0.11 mL/cm2·s at 1000 °C and 850 °C, respectively, of the 85CGO-FC2O composite, which is comparable oxygen permeation flux reported previously.
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