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Evolution of Oxygen-Metal Electron Transfer and Metal Electronic States During Manganese Oxide Catalyzed Water Oxidation Revealed with In Situ Soft X-Ray Spectroscopy

机译:氧化锰电子转移和金属电子态的演化催化氧化锰氧化在原位软X射线光谱中显示出来

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摘要

Manganese oxide (MnOx) electrocatalysts are examined herein by in situ soft X-ray absorption spectroscopy (XAS) and resonant inelastic X-ray scattering (RIXS) during the oxidation of water buffered by borate (pH 9.2) at potentials from 0.75 to 2.25 V vs. the reversible hydrogen electrode. Correlation of L-edge XAS data with previous mechanistic studies indicates Mn-IV is the highest oxidation state involved in the catalytic mechanism. MnOx is transformed into birnessite at 1.45 V and does not undergo further structural phase changes. At potentials beyond this transformation, RIXS spectra show progressive enhancement of charge transfer transitions from oxygen to manganese. Theoretical analysis of these data indicates increased hybridization of the Mn-O orbitals and withdrawal of electron density from the O ligand shell. In situ XAS experiments at the O K-edge provide complementary evidence for such a transition. This step is crucial for the formation of O-2 from water.
机译:本文通过原位软X射线吸收光谱(XAS)在本文中检查氧化锰(MNOX)电催化剂在硼酸盐(pH9.2)在0.75至2.25V的电位缓冲的水中进行氧化期间和共振无弹性X射线散射(RIX) Vs.可逆氢电极。 具有先前机械研究的L边缘XAS数据的相关性表明MN-IV是催化机制涉及的最高氧化状态。 MNOX在1.45 V的1.45 V中转化为BiRnerite,并且不会进行进一步的结构相变。 在这种转变之外的潜力下,RIX Spectra显示了从氧气转移到锰的电荷转移过渡的逐步提高。 这些数据的理论分析表明,从O配体壳体中增加了Mn-O轨道的杂交和撤回电子密度。 在o K-Edge的原位XAS实验提供了这种过渡的互补证据。 该步骤对于从水中形成O-2至关重要。

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