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Lanthanum Ferrites-Based Exsolved Perovskites as Fuel-Flexible Anode for Solid Oxide Fuel Cells

机译:基于镧铁氧体的exsolved perovskites作为固用于固用于固用于固体氧化物燃料电池的燃料柔性阳极

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摘要

Exsolved perovskites can be obtained from lanthanum ferrites, such as La Sr Fe Co O , as result of Ni doping and thermal treatments. Ni can be simply added to the perovskite by an incipient wetness method. Thermal treatments that favor the exsolution process include calcination in air (e.g., 500 °C) and subsequent reduction in diluted H at 800 °C. These processes allow producing a two-phase material consisting of a Ruddlesden–Popper-type structure and a solid oxide solution e.g., α-Fe Co Ni O oxide. The formed electrocatalyst shows sufficient electronic conductivity under reducing environment at the Solid Oxide Fuel Cell (SOFC) anode. Outstanding catalytic properties are observed for the direct oxidation of dry fuels in SOFCs, including H , methane, syngas, methanol, glycerol, and propane. This anode electrocatalyst can be combined with a full density electrolyte based on Gadolinia-doped ceria or with La Sr Ga Mg O (LSGM) or BaCe Y O (BYCO) to form a complete perovskite structure-based cell. Moreover, the exsolved perovskite can be used as a coating layer or catalytic pre-layer of a conventional Ni-YSZ anode. Beside the excellent catalytic activity, this material also shows proper durability and tolerance to sulfur poisoning. Research challenges and future directions are discussed. A new approach combining an exsolved perovskite and an NiCu alloy to further enhance the fuel flexibility of the composite catalyst is also considered. In this review, the preparation methods, physicochemical characteristics, and surface properties of exsoluted fine nanoparticles encapsulated on the metal-depleted perovskite, electrochemical properties for the direct oxidation of dry fuels, and related electrooxidation mechanisms are examined and discussed.
机译:由于Ni掺杂和热处理的结果,可以从镧铁氧体,例如La SR Fe Co O获得exsolved perovskites。通过初始湿度方法可以简单地添加到钙钛矿中。有利于exsolution方法的热处理包括在空气中(例如,500℃)的煅烧,并随后在800℃下稀释的H稀释。这些方法允许产生由鲁德勒斯 - popper型结构组成的两相材料,例如α-Fe Co Ni O氧化物。形成的电催化剂在固体氧化物燃料电池(SOFC)阳极处的还原环境下显示出足够的电子电导率。在SOFC中直接氧化干燃料,包括H,甲烷,合成气,甲醇,甘油和丙烷,观察到出色的催化性能。该阳极电催化剂可以基于Gadolinia掺杂的二氧化铈或La SR Ga Mg O(LSGM)或Bace Y O(ByCo)与全密度电解质组合,以形成完全钙钛矿结构的细胞。此外,exsolved perovskite可以用作常规Ni-ysz阳极的涂层或催化预层。除了出色的催化活性外,该材料还显示出适当的耐久性和耐药性耐受性。讨论了研究挑战和未来方向。还考虑了一种新的方法,结合ExSolved Perovskite和Nicu合金以进一步增强复合催化剂的燃料柔韧性。在本文中,检查并讨论了在金属耗尽的钙钛矿上包封在金属耗尽的钙钛矿上,用于直接氧化干燃料的电化学性能以及相关的电氧化机制的制备方法,物理化学特性和表面性质。

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