首页> 美国卫生研究院文献>Nature Communications >Exceptional electrocatalytic oxygen evolution via tunable charge transfer interactions in La0.5Sr1.5Ni1−xFexO4±δ Ruddlesden-Popper oxides
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Exceptional electrocatalytic oxygen evolution via tunable charge transfer interactions in La0.5Sr1.5Ni1−xFexO4±δ Ruddlesden-Popper oxides

机译:通过La0.5Sr1.5Ni1-xFexO4±δRuddlesden-Popper氧化物中的可调电荷转移相互作用产生异常的电催化氧释放

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摘要

The electrolysis of water is of global importance to store renewable energy and the methodical design of next-generation oxygen evolution catalysts requires a greater understanding of the structural and electronic contributions that give rise to increased activities. Herein, we report a series of Ruddlesden–Popper La0.5Sr1.5Ni1−xFexO4±δ oxides that promote charge transfer via cross-gap hybridization to enhance electrocatalytic water splitting. Using selective substitution of lanthanum with strontium and nickel with iron to tune the extent to which transition metal and oxygen valence bands hybridize, we demonstrate remarkable catalytic activity of 10 mA cm−2 at a 360 mV overpotential and mass activity of 1930 mA mg−1ox at 1.63 V via a mechanism that utilizes lattice oxygen. This work demonstrates that Ruddlesden–Popper materials can be utilized as active catalysts for oxygen evolution through rational design of structural and electronic configurations that are unattainable in many other crystalline metal oxide phases.
机译:水的电解在存储可再生能源方面具有全球重要性,下一代氧气释放催化剂的方法设计需要对引起活动增加的结构和电子贡献有更深入的了解。在本文中,我们报道了一系列Ruddlesden-Popper La0.5Sr1.5Ni1-xFexO4±δ氧化物,它们通过跨间隙杂交促进电荷转移,从而增强电催化水分解。通过用锶和镍选择性取代镧和铁来调节过渡金属和氧价带杂化的程度,我们证明了在360 mV的超电势和质量下10 mA cm −2 具有显着的催化活性。通过利用晶格氧的机制,在1930 mA mg -1 ox在1.63 V时的活性。这项工作表明,通过合理设计结构和电子构型(在许多其他晶体金属氧化物相中无法实现),可以将Ruddlesden-Popper材料用作氧气释放的活性催化剂。

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