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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >In Situ Raman Study of Nickel Oxide and Gold-Supported Nickel Oxide Catalysts for the Electrochemical Evolution of Oxygen
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In Situ Raman Study of Nickel Oxide and Gold-Supported Nickel Oxide Catalysts for the Electrochemical Evolution of Oxygen

机译:氧化镍和金负载的氧化镍催化剂对氧气电化学逸出的原位拉曼研究

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摘要

An in situ Raman spectroscopic investigation has been carried out to identify the composition of the active phase present on the surface of nickel electrodes used for the electrochemical evolution of oxygen. The electrolyte in all cases was 0.1 M KOH. A freshly polished Ni electrode oxidized upon immersion in the electrolyte and at potentials approaching the evolution of oxygen developed a layer of γ-NiOOH. Electrochemical cycling of this film transformed it into β-NiOOH, which was observed to be three times more active than γ-NiOOH. The higher activity of β-NiOOH is attributed to an unidentified Ni oxide formed at a potential above 0.52 V (vs Hg/HgO reference). We have also observed that asubmonolayer of Ni oxide deposited on Au exhibits a turnover frequency (TOF) for oxygen evolution that is an order of magnitude higher than that for a freshly prepared γ-NiOOH surface and more than 2-fold higher than that for a β-NiOOH surface. By contrast, a similar film deposited on Pd exhibits a TOF that is similar to that of bulk γ-NiOOH. It is proposed that the high activity of submonolayer deposits of Ni oxide on Au is due to charge transfer from the oxide to the highly electronegative Au, leading to the possible formation of a mixed Ni/Au surface oxide.
机译:已经进行了原位拉曼光谱研究以鉴定存在于用于氧的电化学放出的镍电极表面上的活性相的组成。在所有情况下,电解质均为0.1 M KOH。新近抛光的镍电极在浸入电解液中并在接近氧气逸出的电位时被氧化,形成了一层γ-NiOOH。该膜的电化学循环将其转变为β-NiOOH,其活性是γ-NiOOH的三倍。 β-NiOOH的较高活性归因于在高于0.52 V(相对于Hg / HgO的参比)的电势下形成的身份不明的Ni氧化物。我们还观察到,沉积在Au上的亚氧化镍亚层表现出的析氧周转频率(TOF)比新鲜制备的γ-NiOOH表面高一个数量级,并且比一个新的γ-NiOOH表面高2倍以上。 β-NiOOH表面。相比之下,沉积在Pd上的类似膜的TOF与块状γ-NiOOH的TOF相似。提出了在Au上的Ni氧化物亚单层沉积物的高活性是由于电荷从氧化物转移到高负电性的Au,导致可能形成混合的Ni / Au表面氧化物。

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