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The electronic structure of iridium and its oxides

机译:铱及其氧化物的电子结构

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摘要

Iridium-based materials are among the most active and stable electrocatalysts for the oxygen evolution reaction. Amorphous iridium oxide structures are found to be more active than their crystalline counterparts. Herein, we combine synchrotron-based X-ray photoemission and absorption spectroscopies with theoretical calculations to investigate the electronic structure of Ir metal, rutile-type IrO2, and an amorphous IrOx. Theory and experiment show that while the Ir 4f line shape of Ir metal is well described by a simple Doniach-Sunji function, the peculiar line shape of rutile-type IrO2 requires the addition of a shake-up satellite 1eV above the main line. In the catalytically more active amorphous IrOx, we find that additional intensity appears in the Ir 4f spectrum at higher binding energy when compared with rutile-type IrO2 along with a pre-edge feature in the O K-edge. We identify these additional features as electronic defects in the anionic and cationic frameworks, namely, formally OI- and Ir-III, which may explain the increased activity of amorphous IrOx electrocatalysts. We corroborate our findings by in situ X-ray diffraction as well as in situ X-ray photoemission and absorption spectroscopies. Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:铱基材料是氧释放反应最活跃,最稳定的电催化剂之一。发现非晶态氧化铱结构比其晶体对应物更具活性。在这里,我们结合基于同步加速器的X射线光发射和吸收光谱与理论计算,以研究Ir金属,金红石型IrO2和非晶IrOx的电子结构。理论和实验表明,用简单的Doniach-Sunji函数很好地描述了Ir金属的Ir 4f线形,而金红石型IrO2的特殊线形需要在​​主线上方添加一个摇动卫星1eV。在催化活性更高的无定形IrOx中,我们发现与金红石型IrO2相比,在更高的结合能下,Ir 4f光谱中出现了额外的强度,同时在O K边缘中出现了前边缘特征。我们确定这些额外的功能为阴离子和阳离子骨架中的电子缺陷,即形式上为OI-和Ir-III,这可以解释无定形IrOx电催化剂活性的提高。我们通过原位X射线衍射以及原位X射线光发射和吸收光谱学证实了我们的发现。版权所有(c)2015 John Wiley&Sons,Ltd.

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