Influence of Nanocrystalline Palladium Morphology on Alkaline Oxygen Reduction Kinetics

The structure sensitivity of the alkaline oxygen reduction reaction (ORR) on palladium is of great interest as cost considerations drive the need to find a replacement for platinum catalysts. The kinetics of alkaline ORR were investigated on nanocrystalline palladium (Pd) films with domain sizes bet...

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Main Authors: Eliran Hamo, Avichay Raviv, Brian A. Rosen
Format: Article
Language:English
Published: MDPI AG 2019-06-01
Series:Catalysts
Subjects:
Online Access:https://www.mdpi.com/2073-4344/9/7/566
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spelling doaj-6fa9c175f43d4e01891e8b34366be9c92020-11-24T21:30:45ZengMDPI AGCatalysts2073-43442019-06-019756610.3390/catal9070566catal9070566Influence of Nanocrystalline Palladium Morphology on Alkaline Oxygen Reduction KineticsEliran Hamo0Avichay Raviv1Brian A. Rosen2Department of Materials Science and Engineering, Tel Aviv University, Ramat Aviv 69978001, IsraelDepartment of Materials Science and Engineering, Tel Aviv University, Ramat Aviv 69978001, IsraelDepartment of Materials Science and Engineering, Tel Aviv University, Ramat Aviv 69978001, IsraelThe structure sensitivity of the alkaline oxygen reduction reaction (ORR) on palladium is of great interest as cost considerations drive the need to find a replacement for platinum catalysts. The kinetics of alkaline ORR were investigated on nanocrystalline palladium (Pd) films with domain sizes between 14 and 30 nm that were synthesized by electrodeposition from aqueous electrolytes. Ten Pd films were prepared under varying electrodeposition parameters leading to each having a unique texture and morphology. The sensitivity of initial alkaline ORR kinetics to the Pd surface structure was evaluated by measuring the kinetic current density and number of electrons transferred for each film. We show through scanning electron microscopy (SEM), x-ray diffraction (XRD), atomic force microscopy (AFM), and voltammetry from rotating disc electrodes (RDEs) that the fastest alkaline ORR kinetics are found on Pd surfaces with high surface roughness, which themselves are composed of fine grains. Such a study is useful for developing membrane electrode assemblies (MEAs) based on directly electrodepositing catalyst onto a conductive diffusion layer.https://www.mdpi.com/2073-4344/9/7/566Pd thin filmselectrocatalysiselectrodeposition
collection DOAJ
language English
format Article
sources DOAJ
author Eliran Hamo
Avichay Raviv
Brian A. Rosen
spellingShingle Eliran Hamo
Avichay Raviv
Brian A. Rosen
Influence of Nanocrystalline Palladium Morphology on Alkaline Oxygen Reduction Kinetics
Catalysts
Pd thin films
electrocatalysis
electrodeposition
author_facet Eliran Hamo
Avichay Raviv
Brian A. Rosen
author_sort Eliran Hamo
title Influence of Nanocrystalline Palladium Morphology on Alkaline Oxygen Reduction Kinetics
title_short Influence of Nanocrystalline Palladium Morphology on Alkaline Oxygen Reduction Kinetics
title_full Influence of Nanocrystalline Palladium Morphology on Alkaline Oxygen Reduction Kinetics
title_fullStr Influence of Nanocrystalline Palladium Morphology on Alkaline Oxygen Reduction Kinetics
title_full_unstemmed Influence of Nanocrystalline Palladium Morphology on Alkaline Oxygen Reduction Kinetics
title_sort influence of nanocrystalline palladium morphology on alkaline oxygen reduction kinetics
publisher MDPI AG
series Catalysts
issn 2073-4344
publishDate 2019-06-01
description The structure sensitivity of the alkaline oxygen reduction reaction (ORR) on palladium is of great interest as cost considerations drive the need to find a replacement for platinum catalysts. The kinetics of alkaline ORR were investigated on nanocrystalline palladium (Pd) films with domain sizes between 14 and 30 nm that were synthesized by electrodeposition from aqueous electrolytes. Ten Pd films were prepared under varying electrodeposition parameters leading to each having a unique texture and morphology. The sensitivity of initial alkaline ORR kinetics to the Pd surface structure was evaluated by measuring the kinetic current density and number of electrons transferred for each film. We show through scanning electron microscopy (SEM), x-ray diffraction (XRD), atomic force microscopy (AFM), and voltammetry from rotating disc electrodes (RDEs) that the fastest alkaline ORR kinetics are found on Pd surfaces with high surface roughness, which themselves are composed of fine grains. Such a study is useful for developing membrane electrode assemblies (MEAs) based on directly electrodepositing catalyst onto a conductive diffusion layer.
topic Pd thin films
electrocatalysis
electrodeposition
url https://www.mdpi.com/2073-4344/9/7/566
work_keys_str_mv AT eliranhamo influenceofnanocrystallinepalladiummorphologyonalkalineoxygenreductionkinetics
AT avichayraviv influenceofnanocrystallinepalladiummorphologyonalkalineoxygenreductionkinetics
AT brianarosen influenceofnanocrystallinepalladiummorphologyonalkalineoxygenreductionkinetics
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