Search results for "electrocatalyst"

showing 10 items of 70 documents

Mechanistic Origins of the pH Dependency in Au-Catalyzed Glycerol Electro-oxidation: Insight from First-Principles Calculations

2021

Electrocatalytic oxidation of glycerol (EOG) is an attractive approach to convert surplus glycerol to value-added products. Experiments have shown that EOG activity and selectivity depend not only on the electrocatalyst but also on the electrode potential, the pH, and the electrolyte. For broadly employed gold (Au) electrocatalysts, experiments have demonstrated high EOG activity under alkaline conditions with glyceric acid as a primary product, whereas under acidic and neutral conditions Au is almost inactive producing only small amounts of dihydroxyacetone. In the present computational work, we have performed an extensive mechanistic study to understand the pH and potential dependency of …

hapetusglycerolelectrolyte02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesCatalysis0104 chemical scienceskatalyysiorgaaninen kemiaglyserolielectrocatalystelektrolyytit0210 nano-technologyelectro-oxidationACS Catalysis
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Highly Active and Stable NiCuMo Electrocatalyst Supported on 304 Stainless Steel Porous Transport Layer for Hydrogen Evolution in Alkaline Water Elec…

2023

Several functionalized porous transport layers with Pt-free electrocatalysts for hydrogen evolution reaction in alkaline conditions, based on Ni, Cu, and Mo, are prepared through electrodeposition onto a 304 stainless steel mesh. Morphological characterization confirms the fabrication of electrodes with high electrochemical surface active area due to the formation of hierarchical nanostructures. Mo presence into the electrocatalysts increases the activity toward the hydrogen evolution reaction. The optimization of electrodeposition process leads to the preparation of highly active NiCuMo electrocatalyst that exhibits near zero onset overpotential and overpotentials of 15 and 113 mV at 10 an…

hydrogen evolutionSettore ING-IND/23 - Chimica Fisica ApplicataPt-free electrocatalystsRenewable Energy Sustainability and the Environmentelectrocatalysisalkaline electrolyzersporous transport layersGeneral Environmental Science
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A new application for nickel foam in alkaline fuel cells

2009

The use of nickel foam as an electrode substrate in alkaline fuel cells (AFCs) has been investigated for bi-polar cells incorporating an electrically conducting gas diffusion layer. This contribution focuses on the cathode, and draws comparisons between nickel foam and nickel mesh substrates. One of the principal electrocatalysts for the cathodic reduction of oxygen is silver, so an improvement in electrochemical performance was obtained by electroplating the nickel foam with silver. The electrodeposition process was optimised to maximise electrochemical performance with a minimum of silver deposited. Nickel foam, which is less expensive than the usual nickel mesh, appears to be a good subs…

inorganic chemicalsAlkaline fuel cellGas diffusion electrodeRenewable Energy Sustainability and the EnvironmentGraphene foamMetallurgyEnergy Engineering and Power Technologychemistry.chemical_elementCondensed Matter PhysicsElectrochemistryElectrocatalystNickelFuel TechnologychemistryChemical engineeringElectrodeotorhinolaryngologic diseasesElectroplatingInternational Journal of Hydrogen Energy
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The reduction of molecular oxygen by iron porphyrins

2002

Abstract Molecular assemblies have been synthesised to reproduce the structure of the cytochrome c oxidase (C c O) active site and to explore the roles played by its different features. It was discovered that a single iron porphyrin, adsorbed at the surface of a graphite electrode, is a selective catalyst for the four-electron reduction of dioxygen to water, at pH 7. To cite this article: D. Ricard et al., C. R. Chimie 5 (2002) 33–36

inorganic chemicalsCytochromebiology010405 organic chemistryGeneral Chemical EngineeringInorganic chemistryActive sitechemistry.chemical_elementGeneral Chemistry010402 general chemistryElectrochemistryElectrocatalyst01 natural sciencesPorphyrinOxygen[ CHIM ] Chemical Sciences0104 chemical scienceschemistry.chemical_compoundchemistryPolymer chemistry[CHIM] Chemical Sciencesbiology.proteinCytochrome c oxidase[CHIM]Chemical SciencesGraphite
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Investigation of Activities for Pt-M Bimetallic Nanoparticles Catalysts on the Oxygen Reduction Reaction

2015

Bi-metallic Pt3Ni/C and Pt3Co/C electrocatalysts were successfully synthesized by a solvent free chemical vapour deposition method with a narrow particle size distribution. The results showed that the electrochemical surface area was increased by adding the additional Ni or Co to a pure Pt catalyst. Pt3Ni/C catalyst exhibited a significant enhancement of oxygen reduction reaction activity. The catalysts were characterized by EDS, XRD, HRTEM and electrochemical activity was determined using cyclic voltammetry.

inorganic chemicalsMaterials scienceChemical engineeringNanoparticleChemical vapor depositionCyclic voltammetryCondensed Matter PhysicsElectrocatalystHigh-resolution transmission electron microscopyElectrochemistryBimetallic stripElectronic Optical and Magnetic MaterialsCatalysisFerroelectrics
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Atomistic Insights into Nitrogen-Cycle Electrochemistry: A Combined DFT and Kinetic Monte Carlo Analysis of NO Electrochemical Reduction on Pt(100)

2017

Electrocatalytic denitrification is a promising technology for the removal of NOx species in groundwater. However, a lack of understanding of the molecular pathways that control the overpotential and product distribution have limited the development of practical electrocatalysts, and additional atomic-level insights are needed to advance this field. Adsorbed NO has been identified as a key intermediate in the NOx electroreduction network, and the elementary steps by which it decomposes to NH4+, N2, NH3OH+, or N2O remain a subject of debate. Herein, we report a combined density functional theory (DFT) and kinetic Monte Carlo (kMC) study of this reaction on Pt(100), a catalytic surface that i…

inorganic chemicalsProtonation02 engineering and technologyOverpotential010402 general chemistryElectrocatalyst01 natural sciencesCatalysisReaction rateelektrokatalyysiComputational chemistryelectrocatalysisKinetic Monte Carlota116density functional theorykinetic Monte CarloNOxta114ChemistrytiheysfunktionaaliteoriaGeneral ChemistryNO electroreduction021001 nanoscience & nanotechnologyProduct distribution0104 chemical sciencesPt(100)Density functional theory0210 nano-technologyACS Catalysis
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Scanning Tunneling Spectroscope Use in Electrocatalysis Testing

2010

Published version of an article from the journal: Materials (1996-1944). Also available from publisher: http://dx.doi.org/10.3390/ma3063675 The relationship between the electrocatalytic properties of an electrode and its ability to transfer electrons between the electrode and a metallic tip in a scanning tunneling microscope (STM) is investigated. The alkaline oxygen evolution reaction (OER) was used as a test reaction with four different metallic glasses, Ni78Si8B14, Ni70Mo20Si5B5, Ni58Co20Si10B12, and Ni25Co50Si15B10, as electrodes. The electrocatalytic properties of the electrodes were determined. The electrode surfaces were then investigated with an STM. A clear relationship between the…

metallic glasses of Ni alloysAnalytical chemistryElectrochemistryElectrocatalystlcsh:TechnologyArticleCatalysislaw.inventionlawscanning tunneling microscopeGeneral Materials Sciencelcsh:MicroscopyQuantum tunnellinglcsh:QC120-168.85lcsh:QH201-278.5Chemistrylcsh:TVDP::Technology: 500::Chemical engineering: 560Oxygen evolutionElectrochemical scanning tunneling microscopeChemical engineeringoxygen evolution reactionlcsh:TA1-2040Electrodelcsh:Descriptive and experimental mechanicslcsh:Electrical engineering. Electronics. Nuclear engineeringScanning tunneling microscopelcsh:Engineering (General). Civil engineering (General)scanning tunneling microscope; oxygen evolution reaction; metallic glasses of Ni alloyslcsh:TK1-9971
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Activation of Stainless Steel 316L Anode for Anion Exchange Membrane Water Electrolysis

2023

The increased emphasis on renewable energy has resulted in a surge of R&D efforts into hydrogen and battery research. The intensive electrochemical environment surrounding the anodic oxygen evolution reaction (OER) has plagued both the activity and stability of the catalytic layer, substrate and porous transport layer, ultimately affecting both these industries. Herein, we report the benefits of potential cycling (PC) a 316L stainless steel felt porous transport layer (PTL) for use in anion exchange membrane water electrolysis. The PC increased surface roughness and created a CrFe5Ni2-OxHy layer through the oxidation of iron as shown by SEM, EDS, XPS, XRD and Raman spectroscopy. Post-PC tes…

nianodeoxidationnifecr hydroxideporous transport layer316l stainless steelanion exchange membrane water electrolysisVDP::Teknologi: 500electrochemical impedance spectroscopyoxygen evolution reactionevolutionElectrochemistryelectrocatalystfilmspotential cycling
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Constant inner potential DFT for modelling electrochemical systems under constant potential and bias

2021

Electrochemical interfaces and reactions play a decisive role in e.g. clean energy conversion but understanding their complex chemistry remains an outstanding challenge. Constant potential or grand canonical ensemble (GCE) simulations are indispensable for unraveling the properties of electrochemical processes as a function of the electrode potential. Currently, constant electrode potential calculations at the density functional theory (DFT) level are carried out by fixing the Fermi level of the simulation cell. However, the Fermi level from DFT calculations does does not always reflect the experimentally controlled electrode potential or describe the thermodynamic independent variable in G…

symbols.namesakeGrand canonical ensembleMaterials scienceChemical physicsFermi levelsymbolsDensity functional theoryConstant (mathematics)ElectrocatalystForce field (chemistry)Electrode potentialElectrochemical potential
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Développement et caractérisation d’électrodes pour l’électrolyse alcaline de l’eau

2020

Splitting water into hydrogen and oxygen by electrolysis using electricity from intermittent ocean current, wind, or solar energies is one of the easiest and cleanest routes for high-purity hydrogen production and an effective way to store the excess electrical power without leaving any carbon footprints. The key dilemma for efficient large-scale production of hydrogen by splitting of water via the hydrogen and oxygen evolution reactions is the high overpotential required, especially for the oxygen evolution reaction. Hence, engineering highly active and stable earth-abundant oxygen evolution electrocatalysts with three-dimensional hierarchical porous architecture via facile, effective and …

Électrocatalyseur à évolution d'oxygène[CHIM.OTHE] Chemical Sciences/OtherÉlectrolyseHydrogen productionProduction d'hydrogène[CHIM.OTHE]Chemical Sciences/OtherElectrolysisOxygen evolution electrocatalyst
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