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首页> 外文期刊>Journal of the American Chemical Society >Oxygen Evolution Reaction Dynamics, Faradaic Charge Efficiency, and the Active Metal Redox States of Ni-Fe Oxide Water Splitting Electrocatalysts
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Oxygen Evolution Reaction Dynamics, Faradaic Charge Efficiency, and the Active Metal Redox States of Ni-Fe Oxide Water Splitting Electrocatalysts

机译:Ni-Fe氧化物水分解电催化剂的析氧反应动力学,法拉第电荷效率和活性金属氧化还原态

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摘要

Mixed Ni-Fe oxides are attractive anode catalysts for efficient water splitting in solar fuels reactors. Because of conflicting past reports, the catalytically active metal redox state of the catalyst has remained under debate. Here, we report an in operando quantitative deconvolution of the charge injected into the nanostructured Ni-Fe oxy- hydroxide OER catalysts or into reaction product molecules. To achieve this, we explore the oxygen evolution reaction dynamics and the individual faradaic charge efficiencies using operando differential electrochemical mass spectrometry (DEMS). We further use X-ray absorption spectroscopy (XAS) under OER conditions at the Ni and Fe K-edges of the electrocatalysts to evaluate oxidation states and local atomic structure motifs. DEMS and XAS data consistently reveal that up to 75% of the Ni centers increase their oxidation state from +2 to +3, while up to 25% arrive in the +4 state for the NiOOH catalyst under OER catalysis. The Fe centers consistently remain in the +3 state, regardless of potential and composition. For mixed Ni_(100-x)Fe_x catalysts, where x exceeds 9 atomic %, the faradaic efficiency of O_2 sharply increases from ~30% to 90%, suggesting that Ni atoms largely remain in the oxidation state +2 under catalytic conditions. To reconcile the apparent low level of oxidized Ni in mixed Ni-Fe catalysts, we hypothesize that a kinetic competition between the (ⅰ) metal oxidation process and the (ⅱ) metal reduction step during O_2 release may account for an insignificant accumulation of detectable high-valent metal states if the reaction rate of process (ⅱ) outweighs that of (ⅰ). We conclude that a discussion of the superior catalytic OER activity of Ni-FeOOH electrocatalysts in terms of surface catalysis and redox-inactive metal sites likely represents an oversimplification that fails to capture essential aspects of the synergisms at highly active Ni-Fe sites.
机译:混合的Ni-Fe氧化物是吸引人的阳极催化剂,用于在太阳能燃料反应堆中进行有效的水分解。由于过去的报道相互矛盾,催化剂的催化活性金属氧化还原态一直处于争论之中。在这里,我们报告了注入纳米结构的Ni-Fe羟基氢氧化物OER催化剂或反应产物分子中的电荷在操作中的定量解卷积。为此,我们使用操作差分电化学质谱法(DEMS)探索了析氧反应动力学和法拉第电荷效率。我们进一步在OER条件下,在电催化剂的Ni和Fe K边缘上使用X射线吸收光谱(XAS)来评估氧化态和局部原子结构图案。 DEMS和XAS数据始终显示,在OER催化下,多达75%的Ni中心将其氧化态从+2增至+3,而高达25%的Ni中心以+4态到达。铁中心始终保持在+3状态,而不管其电位和组成如何。对于x超过9原子%的混合Ni_(100-x)Fe_x催化剂,O_2的法拉第效率从〜30%急剧增加到90%,这表明在催化条件下,Ni原子大部分保持在+2的氧化态。为了调和混合Ni-Fe催化剂中明显较低的氧化Ni水平,我们假设在O_2释放过程中(ⅰ)金属氧化过程和(ⅱ)金属还原步骤之间的动力学竞争可能导致可检测的高浓度微量积累价金属表示过程(ⅱ)的反应速率是否超过(ⅰ)的反应速率。我们得出结论,就表面催化作用和氧化还原非活性金属位点而言,Ni-FeOOH电催化剂具有优异的催化OER活性的讨论可能表示过于简化,无法捕获高活性Ni-Fe位点上的协同作用的基本方面。

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  • 来源
    《Journal of the American Chemical Society》 |2016年第17期|5603-5614|共12页
  • 作者单位

    Technical University Berlin, Department of Chemistry, Chemical Engineering Division, Strasse des 17. Juni 124, 10623 Berlin, Germany;

    Free University of Berlin, Department of Physics, Arnimallee 14, 14195 Berlin, Germany;

    Technical University Berlin, Department of Chemistry, Chemical Engineering Division, Strasse des 17. Juni 124, 10623 Berlin, Germany;

    Technical University Berlin, Department of Chemistry, Chemical Engineering Division, Strasse des 17. Juni 124, 10623 Berlin, Germany;

    Technical University Berlin, Department of Chemistry, Chemical Engineering Division, Strasse des 17. Juni 124, 10623 Berlin, Germany;

    Technical University Berlin, Department of Chemistry, Chemical Engineering Division, Strasse des 17. Juni 124, 10623 Berlin, Germany;

    Technical University Berlin, Department of Chemistry, Chemical Engineering Division, Strasse des 17. Juni 124, 10623 Berlin, Germany;

    Free University of Berlin, Department of Physics, Arnimallee 14, 14195 Berlin, Germany;

    Technical University Berlin, Department of Chemistry, Chemical Engineering Division, Strasse des 17. Juni 124, 10623 Berlin, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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