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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Novel cobalt-free BaFe1-xGdxO3-delta perovskite membranes for oxygen separation
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Novel cobalt-free BaFe1-xGdxO3-delta perovskite membranes for oxygen separation

机译:用于氧气分离的新型无钴BaFe1-xGdxO3-δ钙钛矿膜

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摘要

A cobalt-free perovskite-type mixed ionic and electronic conductor (MIEC) is of technological and economic importance in many energy-related applications. In this work, a new group of Fe-based perovskite MIECs with BaFe1-xGdxO3-delta (0.025 <= x <= 0.20) compositions was developed for application in oxygen permeation membranes. Slight Gd doping (x = 0.025) can stabilize the cubic structure of the BaFe1-xGdxO3-delta perovskite. The Gd substitution of BaFe1-xGdxO3-delta materials increases the structural and chemical stability in the atmosphere containing CO2 and H2O, and decreases the thermal expansion coefficient. The BaFe0.975Gd0.025O3-delta membrane exhibits fast oxygen surface exchange kinetics and a high bulk diffusion coefficient, and achieves a high oxygen permeation flux of 1.37 mL cm(-2) min(-1) for a 1 mm thick membrane at 950 degrees C under an air/He oxygen gradient, and can maintain stability at 900 degrees C for 100 h. Compared to the pristine BaFeO3-delta and the well-studied Ba0.95La0.05FeO3-delta membranes, a lower oxygen permeation activation energy and higher oxygen permeability are obtained for the 2.5 at% Gd-doped material, which might be attributed to the expanded lattice by doping large Gd3+ cations and a limited negative effect from the strong Gd-O bond. A combination study of first principles calculation and experimental measurements was further conducted to advance the understanding of Gd effects on the oxygen migration behavior in BaFe1-xGdxO3-delta. These findings are expected to provide guidelines for material design of high performance MIECs.
机译:无钴钙钛矿型混合离子和电子导体(MIEC)在许多与能源有关的应用中具有技术和经济重要性。在这项工作中,开发了一组新的具有BaFe1-xGdxO3-δ(0.025 <= x <= 0.20)组成的铁基钙钛矿MIEC,用于氧渗透膜。少量的Gd掺杂(x = 0.025)可以稳定BaFe1-xGdxO3-δ钙钛矿的立方结构。 BaFe1-xGdxO3-δ材料的Gd替代增加了在含有CO2和H2O的气氛中的结构和化学稳定性,并降低了热膨胀系数。 BaFe0.975Gd0.025O3-delta膜表现出快速的氧表面交换动力学和高的本体扩散系数,并且在950毫米厚1 mm的膜上实现了1.37 mL cm(-2)min(-1)的高氧渗透通量在空气/氦氧梯度下保持100摄氏度,并可以在900摄氏度下保持100小时的稳定性。与原始的BaFeO3-δ和经过充分研究的Ba0.95La0.05FeO3-δ膜相比,掺杂2.5 at%的Gd的材料具有较低的氧渗透活化能和较高的氧渗透性,这可能是由于膨胀通过掺杂大的Gd3 +阳离子形成晶格,而强大的Gd-O键则产生有限的负面影响。进一步进行了第一性原理计算和实验测量的组合研究,以进一步了解Gd对BaFe1-xGdxO3-δ中氧迁移行为的影响。这些发现有望为高性能MIEC的材料设计提供指导。

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