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Electrochemical Activation of Atomic-Layer-Deposited Nickel Oxide for Water Oxidation

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Abstract

NiO-based electrocatalysts, known for their high activity, stability, and low cost in alkaline media, are recognized as promising candidates for the oxygen evolution reaction (OER). In parallel, atomic layer deposition (ALD) is actively researched for its ability to provide precise control over the synthesis of ultrathin electrocatalytic films, including film thickness, conformality, and chemical composition. This study examines how NiO bulk and surface properties affect the electrocatalytic performance for the OER while focusing on the prolonged electrochemical activation process. Two ALD methods, namely, plasma-assisted and thermal ALD, are employed as tools to deposit NiO films. Cyclic voltammetry analysis of ∼10 nm films in 1.0 M KOH solution reveals a multistep electrochemical activation process accompanied by phase transformation and delamination of activated nanostructures. The plasma-assisted ALD NiO film exhibits three times higher current density at 1.8 V vs RHE than its thermal ALD counterpart due to enhanced β-NiOOH formation during activation, thereby improving the OER activity. Additionally, the rougher surface formed during activation enhanced the overall catalytic activity of the films. The goal is to unravel the relationship between material properties and the performance of the resulting OER, specifically focusing on how the design of the material by ALD can lead to the enhancement of its electrocatalytic performance.
Original languageEnglish
Pages (from-to)22570-22582
Number of pages13
JournalJournal of Physical Chemistry C
Volume127
Issue number46
Early online date8 Nov 2023
DOIs
Publication statusPublished - 23 Nov 2023

Funding

This work was carried out within the partnership (IMPULS program) between the Eindhoven University of Technology (TU/e) and the Dutch Institute for Fundamental Energy Research (DIFFER). We would like to acknowledge the SCALE Project (no. NWA.1237.18.001) as well for the valuable collaboration and involvement in this study. We would like to extend our appreciation to Janneke Zeebregts, Joris Meulendijks, Barathi Krishnamoorthy, and Caspar van Bommel at TU/e and Frans Janssen at DIFFER for their technical support. Furthermore, we would like to thank Dr. Wim Arnold Bik (DIFFER) for conducting RBS measurements. S.H.K. acknowledges the contribution of Kousumi Mukherjee (TU/e) to electrical conductivity studies. S.H.K. is also grateful to Dr. Marcel Verheijen, Dr. Nga Phung, and Renée van Limpt (TU/e) and to Ameya Ranade (DIFFER) for their expertise and insightful comments throughout this research. M.C. acknowledges the NWO Aspasia program.

Funders
DIFFER Dutch Institute for Fundamental Energy Research
Eindhoven University of Technology
Nederlandse Organisatie voor Wetenschappelijk Onderzoek

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