<div class="csl-bib-body">
<div class="csl-entry">Guggenberger, P., Priamushko, T., Patil, P., Florek, J., Garstenauer, D., Mautner, A., Won Shin, J., Ryoo, R., Pichler, C., & Kleitz, F. (2024). Low-Temperature controlled synthesis of nanocast mixed metal oxide spinels for enhanced OER activity. <i>Journal of Colloid and Interface Science</i>, <i>661</i>, 574–587. https://doi.org/10.1016/j.jcis.2024.01.056</div>
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dc.identifier.issn
0021-9797
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/205565
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dc.description.abstract
The controlled cation substitution is an effective strategy for optimizing the density of states and enhancing the electrocatalytic activity of transition metal oxide catalysts for water splitting. However, achieving tailored mesoporosity while maintaining elemental homogeneity and phase purity remains a significant challenge, especially when aiming for complex multi-metal oxides. In this study, we utilized a one-step impregnation nanocasting method for synthesizing mesoporous Mn-, Fe-, and Ni-substituted cobalt spinel oxide (Mn0.1Fe0.1Ni0.3Co2.5O4, MFNCO) and demonstrate the benefits of low-temperature calcination within a semi-sealed container at 150-200 °C. The comprehensive discussion of calcination temperature effects on porosity, particle size, surface chemistry and catalytic performance for the alkaline oxygen evolution reaction (OER) highlights the importance of humidity, which was modulated by a pre-drying step. The catalyst calcined at 170 °C exhibited the lowest overpotential (335 mV at 10 mA cm-2), highest current density (433 mA cm-2 at 1.7 V vs. RHE, reversible hydrogen electrode) and further displayed excellent stability over 22 h (at 10 mA cm-2). Furthermore, we successfully adapted this method to utilize cheap, commercially available silica gel as a hard template, yielding comparable OER performance. Our results represent a significant progress in the cost-efficient large-scale preparation of complex multi-metal oxides for catalytic applications.
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dc.language.iso
en
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dc.publisher
ACADEMIC PRESS INC ELSEVIER SCIENCE
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dc.relation.ispartof
Journal of Colloid and Interface Science
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dc.rights.uri
http://creativecommons.org/licenses/by/4.0/
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dc.subject
Electrochemical stability
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dc.subject
Low-energy ion scattering
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dc.subject
Mixed metal oxides
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dc.subject
Nanocasting
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dc.subject
Oxygen evolution reaction
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dc.subject
Spinel
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dc.subject
Water electrolysis
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dc.title
Low-Temperature controlled synthesis of nanocast mixed metal oxide spinels for enhanced OER activity