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Oxygen permeation and microstructure of intergrowth perovskite Sr-La-Fe-Co based mixed-conductive ceramics

机译:共生钙钛矿Sr-La-Fe-Co基混合导电陶瓷的透氧性和微观结构

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摘要

The partial oxidation reforming method is advantageous to develop highly effective and low-cost products of H2 gas used for fuel cells. For the partial oxidation, however, large amount of pure O2 gas are desirable for acceleration of the H2 production. Electronic and oxygen ionic conductive (mixed-conductive) oxide ceramics can be used to obtain pure O2 gas, because the mixed conductivity contributes to permeate pure O2 gas from air at the elevated temperatures. However, high permeation temperature of above 900°C is a problem. Higher temperature for the permeation incurs deterioration of both the ceramics and the steel to support the ceramics. We intend to find out a new mixed-conductive oxide with high oxygen permeation at lower temperatures than 900°C. In this study, we focus the Sr-La-Fe-Co oxides characterized by the intergrowth structures. We have investigated an appropriate condition to prepare Sr3-xLaxFeCoO7-δ ceramics with intergrowth perovskite structure. Then we have investigated microstructures as well as oxygen permeation properties of a dense Sr2.45La0.55FeCoO7-δ ceramics. The oxygen permeation flux of the Sr2.45La0.55FeCoO7-δ ceramics was as high as that of cubic perovskite Sr0.8La0.2 Fe0.8Ga0.2O3-δceramics.
机译:部分氧化重整方法有利于开发用于燃料电池的氢气的高效且低成本的产品。但是,对于部分氧化,需要大量的纯O 2气来加速H 2的产生。电子和氧离子导电(混合导电)氧化物陶瓷可用于获得纯O2气体,因为混合的导电性有助于在高温下从空气中渗透出纯O2气体。然而,高于900℃的高渗透温度是一个问题。较高的渗透温度引起陶瓷和支撑陶瓷的钢的劣化。我们打算找到一种在低于900°C的较低温度下具有高氧气渗透率的新型混合导电氧化物。在这项研究中,我们集中于以共生结构为特征的Sr-La-Fe-Co氧化物。我们研究了制备具有共生钙钛矿结构的Sr3-xLaxFeCoO7-δ陶瓷的合适条件。然后,我们研究了致密Sr2.45La0.55FeCoO7-δ陶瓷的微观结构以及氧渗透性能。 Sr2.45La0.55FeCoO7-δ陶瓷的氧渗透通量与立方钙钛矿Sr0.8La0.2Fe0.8Ga0.2O3-δ陶瓷的氧通量一样高。

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