Ir-based nanoparticles supported on conductive oxide supports show high water oxidation (oxygen evolution reaction, OER) activity and represent a promising alternative to state-of-art anode catalysts in water electrolyzers. Physicochemical interactions between the Ir-based catalytic nanoparticles and the oxide supports can critically affect the weight loading, surface area, activity, and stability of the Ir-based catalysts under electrochemical OER conditions. However, systematic insight on the influences of surface charge on deposition yield and dispersion of the nanoparticles on oxide supports and the influence of this interaction on the catalytic performance of supported Ir-based alloys is missing. In this work, the impact of electrostat...
International audienceThe use of high amounts of iridium in industrial proton exchange membrane wate...
The morphology, crystallinity, and chemical state of well-defined Ir oxide nanoscale thin-film catal...
Iridium oxide is the preferred catalyst for water oxidation but it is required to maximize its utili...
The widespread implementation of proton exchange membrane water electrolyzers (PEMWEs) is greatly hi...
Redox-active support materials can help reduce the noble-metal loading of a solid chemical catalyst ...
Decreasing the noble metal content while maintaining high catalytic activity is a critical requireme...
Heterogeneous catalysts in the form of atomically dispersed metals on a support provide the most eff...
Active and highly stable oxide-supported IrNiO<sub>x</sub> core–shell catalysts for electrochemical ...
International audienceThe need to increase the energy production from renewable sources and their in...
SSCI-VIDE+ECI2D+LPIInternational audienceSupporting metal nanoparticles is a common approach in hete...
This is an open access article published under an ACS AuthorChoice License, which permits copying an...
International audienceAdvanced materials are needed to meet the requirements of devices designed for...
Application of oxide supports is considered as a viable approach to decrease iridium loading in oxyg...
International audienceThe use of high amounts of iridium in industrial proton exchange membrane wate...
The morphology, crystallinity, and chemical state of well-defined Ir oxide nanoscale thin-film catal...
Iridium oxide is the preferred catalyst for water oxidation but it is required to maximize its utili...
The widespread implementation of proton exchange membrane water electrolyzers (PEMWEs) is greatly hi...
Redox-active support materials can help reduce the noble-metal loading of a solid chemical catalyst ...
Decreasing the noble metal content while maintaining high catalytic activity is a critical requireme...
Heterogeneous catalysts in the form of atomically dispersed metals on a support provide the most eff...
Active and highly stable oxide-supported IrNiO<sub>x</sub> core–shell catalysts for electrochemical ...
International audienceThe need to increase the energy production from renewable sources and their in...
SSCI-VIDE+ECI2D+LPIInternational audienceSupporting metal nanoparticles is a common approach in hete...
This is an open access article published under an ACS AuthorChoice License, which permits copying an...
International audienceAdvanced materials are needed to meet the requirements of devices designed for...
Application of oxide supports is considered as a viable approach to decrease iridium loading in oxyg...
International audienceThe use of high amounts of iridium in industrial proton exchange membrane wate...
The morphology, crystallinity, and chemical state of well-defined Ir oxide nanoscale thin-film catal...
Iridium oxide is the preferred catalyst for water oxidation but it is required to maximize its utili...