氧气
钙钛矿(结构)
烧结
材料科学
扩散
相(物质)
碳酸盐
固溶体
矿物学
离子键合
结晶学
分析化学(期刊)
化学
离子
冶金
物理
色谱法
有机化学
热力学
作者
Paolo Fedeli,Veronica Nigroni,Enrico Malgrati,Angelo Cavaliere,A. Cammi,Francesca Drago
摘要
Abstract Oxygen transport membranes (OTMs) can be operated as efficient oxygen separators and oxygen distributors, but their diffusion is hampered by the lack of appropriate materials with sufficient chemical stability in operating conditions. Mixed ionic‐electronic conducting SrTiO 3 ‐based perovskite are a promising option due to their remarkable resistance in reducing environments, but they are prone to degradation in CO 2 ‐containing atmospheres owing to carbonate formation. In this study, we propose new Ca 1‐ x Sr x Ti 0.8 Fe 0.2 O 3‐ δ perovskites where the Sr 2+ cation is partially substituted by Ca 2+ to improve the tolerance to CO 2 . We show that, upon increasing Ca molar fraction, the phase stability in CO 2 is progressively improved thanks to the mitigation of carbonate growth. The manufacturing process of the membranes benefits from Ca introduction, which promotes powder densification during sintering. A membrane made of Ca 0.1 Sr 0.9 Ti 0.8 Fe 0.2 O 3‐ δ exhibited a stable oxygen flux for 340 h at 900°C when swept with He and for 170 h at 900°C when swept with a gaseous stream containing 40% CO 2 . Post‐test characterizations confirmed the retention of the crystal structure after the long‐term permeation tests. Ca‐substituted SrTi 1‐ y Fe y O 3‐ δ perovskites can be considered promising materials for OTMs working in harsh environments and in the presence of CO 2 .
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