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Spatially and Chemically Resolved Visualization of Fe Incorporation into NiO Octahedra during the Oxygen Evolution Reaction

MPS-Authors
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Yang,  Fengli
Interface Science, Fritz Haber Institute, Max Planck Society;

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Lopez-Luna,  Mauricio
Interface Science, Fritz Haber Institute, Max Planck Society;

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Haase,  Felix
Interface Science, Fritz Haber Institute, Max Planck Society;

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Escalera Lopez,  Daniel
Interface Science, Fritz Haber Institute, Max Planck Society;

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Yoon,  Aram
Interface Science, Fritz Haber Institute, Max Planck Society;

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Rüscher,  Martina
Interface Science, Fritz Haber Institute, Max Planck Society;

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Rettenmaier,  Clara
Interface Science, Fritz Haber Institute, Max Planck Society;

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Jeon,  Hyosang
Interface Science, Fritz Haber Institute, Max Planck Society;

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Ortega,  Eduardo
Interface Science, Fritz Haber Institute, Max Planck Society;

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Timoshenko,  Janis       
Interface Science, Fritz Haber Institute, Max Planck Society;

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Bergmann,  Arno       
Interface Science, Fritz Haber Institute, Max Planck Society;

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Chee,  See Wee       
Interface Science, Fritz Haber Institute, Max Planck Society;

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Roldan Cuenya,  Beatriz       
Interface Science, Fritz Haber Institute, Max Planck Society;

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Citation

Yang, F., Lopez-Luna, M., Haase, F., Escalera Lopez, D., Yoon, A., Rüscher, M., et al. (2023). Spatially and Chemically Resolved Visualization of Fe Incorporation into NiO Octahedra during the Oxygen Evolution Reaction. Journal of the American Chemical Society, 145(39), 21465-21474. doi:10.1021/jacs.3c07158.


Cite as: https://hdl.handle.net/21.11116/0000-000D-DD5C-4
Abstract
The activity of Ni (hydr)oxides for the electrochemical evolution of oxygen (OER), a key component of the overall water splitting reaction, is known to be greatly enhanced by the incorporation of Fe. However, a complete understanding of the role of cationic Fe species and the nature of the catalyst surface under reaction conditions remains unclear. Here, using a combination of electrochemical cell and conventional transmission electron microscopy, we show how the surface of NiO electrocatalysts, with initially well-defined surface facets, restructures under applied potential and forms an active NiFe layered double (oxy)hydroxide (NiFe-LDH) when Fe3+ ions are present in the electrolyte. Continued OER under these conditions, however, leads to the creation of additional FeOx aggregates. Electrochemically, the NiFe-LDH formation correlates with a lower onset potential toward the OER, whereas the formation of the FeOx aggregates is accompanied by a gradual decrease in the OER activity. Complementary insight into the catalyst near-surface composition, structure, and chemical state is further extracted using X-ray photoelectron spectroscopy, operando Raman spectroscopy, and operando X-ray absorption spectroscopy together with measurements of Fe uptake by the electrocatalysts using time-resolved inductively coupled plasma mass spectrometry. Notably, we identified that the catalytic deactivation under stationary conditions is linked to the degradation of in situ-created NiFe-LDH. These insights exemplify the complexity of the active state formation and show how its structural and morphological evolution under different applied potentials can be directly linked to the catalyst activation and degradation.