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Characterization of NiFe oxyhydroxide electrocatalysts by integrated electronic structure calculations and spectroelectrochemistry

机译:集成电子结构计算和光谱电化学表征羟基氧化镍铁电催化剂

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摘要

NiFe oxyhydroxide materials are highly active electrocatalysts for the oxygen evolution reaction (OER), an important process for carbon-neutral energy storage. Recent spectroscopic and computational studies increasingly support iron as the site of catalytic activity but differ with respect to the relevant iron redox state. A combination of hybrid periodic density functional theory calculations and spectroelectrochemical experiments elucidate the electronic structure and redox thermodynamics of Ni-only and mixed NiFe oxyhydroxide thin-film electrocatalysts. The UV/visible light absorbance of the Ni-only catalyst depends on the applied potential as metal ions in the film are oxidized before the onset of OER activity. In contrast, absorbance changes are negligible in a 25% Fe-doped catalyst up to the onset of OER activity. First-principles calculations of proton-coupled redox potentials and magnetizations reveal that the Ni-only system features oxidation of Ni2+ to Ni3+, followed by oxidation to a mixed Ni3+/4+ state at a potential coincident with the onset of OER activity. Calculations on the 25% Fe-doped system show the catalyst is redox inert before the onset of catalysis, which coincides with the formation of Fe4+ and mixed Ni oxidation states. The calculations indicate that introduction of Fe dopants changes the character of the conduction band minimum from Ni-oxide in the Ni-only to predominantly Fe-oxide in the NiFe electrocatalyst. These findings provide a unified experimental and theoretical description of the electrochemical and optical properties of Ni and NiFe oxyhydroxide electrocatalysts and serve as an important benchmark for computational characterization of mixed-metal oxidation states in heterogeneous catalysts.
机译:NiFe羟基氧化物材料是用于氧释放反应(OER)的高活性电催化剂,该反应是碳中性能量存储的重要过程。最近的光谱和计算研究越来越多地支持铁作为催化活性的位点,但是在相关的铁氧化还原状态方面有所不同。混合周期性密度泛函理论计算和光谱电化学实验相结合,阐明了纯镍和混合NiFe羟基氧化物薄膜电催化剂的电子结构和氧化还原热力学。仅Ni催化剂的UV /可见光吸收率取决于施加的电势,因为膜中的金属离子在OER活性开始之前被氧化。相反,直至OER活性开始,在25%的铁掺杂催化剂中吸光度变化可忽略不计。质子耦合氧化还原电势和磁化强度的第一性原理计算表明,仅纯镍系统具有将Ni 2 + 氧化为Ni 3 + 的作用,然后再氧化为混合态Ni 3 + / 4 + 的状态可能与OER活性的发生同时发生。 25%Fe掺杂体系的计算表明,催化剂在开始催化之前是氧化还原惰性的,这与形成Fe 4 + 和混合的Ni氧化态相吻合。计算表明,Fe掺杂剂的引入将最小导带的特性从仅Ni的Ni-氧化物改变为NiFe电催化剂中的Fe-氧化物。这些发现为Ni和NiFe羟基氧化物电催化剂的电化学和光学性质提供了统一的实验和理论描述,并为计算表征多相催化剂中混合金属的氧化态提供了重要依据。

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