Search results for "Electrocatalysi"

showing 10 items of 39 documents

Bimetallic Intersection in PdFe@FeO x ‐C Nanomaterial for Enhanced Water Splitting Electrocatalysis

2022

Supported Fe-doped Pd-nanoparticles (NPs) are prepared via soft transformation of a PdFe-metal oraganic framework (MOF). The thus synthesized bimetallic PdFe-NPs are supported on FeO@C layers, which are essential for developing well-defined and distributed small NPs, 2.3 nm with 35% metal loading. They are used as bifunctional nanocatalysts for the electrocatalytic water splitting process. They display superior mass activity for the oxygen evolution reaction (OER) and the hydrogen evolution reaction (HER), both in alkaline and acid media, compared with those obtained for benchmarking platinum HER catalyst, and ruthenium, and iridium oxide OER catalysts. PdFe-NPs also exhibit outstanding sta…

Oxygen evolution reactionCatàlisiNanotecnologiaRenewable Energy Sustainability and the EnvironmentDesenvolupament sostenibleElectrocatalysisHydrogen evolution reactionNanocompositesGeneral Environmental ScienceAdvanced Sustainable Systems
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Photocatalytic and photoelectrocatalytic H2 evolution combined with valuable furfural production

2023

In this work the photocatalytic (PC) and photoelectrocatalytic (PEC) reforming of furfuryl alcohol (FA) under environmental friendly conditions was investigated. Both H2 evolution and partial oxidation to furfuraldehyde were followed. For the first time TiO2 based photocatalysts were studied and the photocatalytic activity of home prepared photocatalysts was compared with that of commercial ones under both UVA and simulated solar irradiation. PEC tests were performed by using home prepared TiO2 nanotubes (TiO2 NTs) as photoanode and Pt free Ni foam as cathode to improve the Hydrogen Evolution Reaction (HER). Both the partial FA oxidation reaction rate and H2 evolution rate were normalized f…

Settore ING-IND/24 - Principi Di Ingegneria ChimicaSettore ING-IND/23 - Chimica Fisica ApplicataFurfuryl alcohol partial oxidationProcess Chemistry and TechnologyTiO2PhotoelectrocatalysisSettore CHIM/07 - Fondamenti Chimici Delle TecnologieH2 productionPhotocatalysisbrookiteCatalysisPt free cathodeApplied Catalysis A: General
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Visible-light photoelectrodegradation of diuron on WO3 nanostructures

2018

[EN] The degradation of pesticide diuron has been explored by photoelectrocatalysis (PEC) under visible light illumination using two different WO3 nanostructures, obtained by anodization of tungsten. The highest degradation efficiency (73%) was obtained for WO3 nanosheets synthesized in the presence of small amounts of hydrogen peroxide (0.05 M). For that nanostructure, the kinetic coefficient for diuron degradation was 133% higher than that for the other nanostructure (anodized in the presence of fluoride anions). These results have been explained by taking into account the different architecture and dimensions of the two WO3 nanostructures under study.

Environmental EngineeringMaterials scienceNanostructurechemistry.chemical_element02 engineering and technology010501 environmental sciencesManagement Monitoring Policy and LawTungsten01 natural sciencesINGENIERIA QUIMICAchemistry.chemical_compoundPesticidesHydrogen peroxideWaste Management and Disposal0105 earth and related environmental sciencesNanoestructuresAnodizingGeneral Medicine021001 nanoscience & nanotechnologyWO3 nanostructures AnodizationElectroquímicachemistryChemical engineeringDiuronKinetic coefficientDegradation (geology)Photoelectrocatalysis0210 nano-technologyFluorideVisible spectrum
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Proton reduction by phosphinidene-capped triiron clusters

2021

Bis(phosphinidene)-capped triiron carbonyl clusters, including electron rich derivatives formed by substitution with chelating diphosphines, have been prepared and examined as proton reduction catalysts. Treatment of the known cluster [Fe3(CO)9(µ3-PPh)2] (1) with various diphosphines in refluxing THF (for 5, refluxing toluene) afforded the new clusters [Fe3(CO)7(µ3-PPh)2(κ2-dppb)] (2), [Fe3(CO)7(µ3-PPh)2(κ2-dppv)] (3), [Fe3(CO)7(µ3-PPh)2(κ2-dppe)] (4) and [Fe3(CO)7(µ3-PPh)2(µ-κ2-dppf)] (5) in moderate yields, together with small amounts of the corresponding [Fe3(CO)8(µ3-PPh)2(κ1-Ph2PxPPh2)] cluster (x = -C4H6-, -C2H2-, -C2H4-, -C3H6-, -C5H4FeC5H4-). The molecular structures of complexes 3 a…

rautaphosphinidine010402 general chemistryElectrochemistry01 natural sciencesBiochemistryMedicinal chemistryRedoxproton reductionDFTCatalysisInorganic Chemistrychemistry.chemical_compoundkatalyytitelektrokatalyysiDiphosphinesMaterials ChemistryCluster (physics)electrocatalysisPhysical and Theoretical Chemistryfosfori010405 organic chemistryLigandOrganic ChemistrytiheysfunktionaaliteoriakompleksiyhdisteettriironToluene0104 chemical scienceschemistryPhosphinidene
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Degradation of Diazinon based on photoelectrocatalytic technique using enhanced WO3 nanostructures: Mechanism and pathway

2021

[EN] In this work, a resistant and toxic pesticide called diazinon was degraded through the photoelectrocatalysis (PEC) technique using tungsten oxide (WO3) nanostructures, applying an external bias of 1VAg/AgCl and simulated solar illumination. For this, WO3 nanostructures have been synthesized using electrochemical anodization in 0.05 M hydrogen peroxide and 1.5 M of different acidic electrolytes: H2SO4, CH4O3S or HNO3. Morphology, composition and crystallinity of the samples were evaluated through Field Emission Scanning Electron Microscopy (FE-SEM), Atomic Force Microscopy (AFM) and Raman Spectroscopy. Then, the photoelectrochemical properties of the samples were analyzed by Photo-Elect…

Materials scienceNanostructureIntermediates02 engineering and technologyElectrolyte010501 environmental sciencesMass spectrometry01 natural sciencesINGENIERIA QUIMICACrystallinitychemistry.chemical_compoundsymbols.namesakeWO3Chemical Engineering (miscellaneous)Hydrogen peroxideWaste Management and Disposal0105 earth and related environmental sciencesProcess Chemistry and Technology021001 nanoscience & nanotechnologyPollutionNanostructuresDielectric spectroscopyChemical engineeringchemistryDiazinonsymbolsDegradation (geology)Photoelectrocatalysis0210 nano-technologyRaman spectroscopyJournal of Environmental Chemical Engineering
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Cobalt, copper and zinc octacarboxyphthalocyanine activity in anaerobic oxidation of -SH group containing compounds

2007

Wykonano serię pomiarów elektrochemicznych w celu określenia aktywności katalitycznej oktakarboksyftalocyjaniny kobaltu, cynku i miedzi w anaerobowym utlenianiu związków organicznych zawierających grupę-SH. Badano następujące substraty: 2-tioetanol (TE), L-cysteinę i 1,4-ditio-2,3-butanodiol (DTT). Jako elektrodę wskaźnikową stosowano elektrodę grafitową GE. Przeprowadzono badania dla roztworów substratów, w których potencjalny katalizator był rozpuszczony, jak i dla roztworów, w których katalizator był zaadsorbowany na powierzchni elektrody GE. Jedynie oktakarboksyftalocyjanina kobaltu, CoPcOC, zaadsorbowana na powierzchni elektrody grafitowej okazała się dobrym katalizatorem heterogennym.…

metaloftalocyjaninygraphite electrodeoxidationelektroda grafitowautlenianietioleelectrocatalysismetallophthalocyanineselektrokatalizathiolsEcological Chemistry and Engineering. S = Chemia i Inżynieria Ekologiczna. S
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Adiabatic versus non-adiabatic electron transfer at 2D electrode materials

2021

2D electrode materials are often deployed on conductive supports for electrochemistry and there is a great need to understand fundamental electrochemical processes in this electrode configuration. Here, an integrated experimental-theoretical approach is used to resolve the key electronic interactions in outer-sphere electron transfer (OS-ET), a cornerstone elementary electrochemical reaction, at graphene as-grown on a copper electrode. Using scanning electrochemical cell microscopy, and co-located structural microscopy, the classical hexaamineruthenium (III/II) couple shows the ET kinetics trend: monolayer > bilayer > multilayer graphene. This trend is rationalized quantitatively through th…

Computational chemistryMultidisciplinaryTKScienceQelektrodittiheysfunktionaaliteoriaGeneral Physics and Astronomy02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesGeneral Biochemistry Genetics and Molecular BiologyArticlesähkökemia0104 chemical sciencesCondensed Matter::Materials ScienceDensity functional theorygrafeeniQD0210 nano-technologyElectrocatalysisQC
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Organophosphorus pesticides (chlorfenvinphos, phosmet and fenamiphos) photoelectrodegradation by using WO3 nanostructures as photoanode

2021

[EN] The photoelectrocatalytic (PEC) degradation of recalcitrant and toxic organophosphorus pesticides, fenamiphos, chlorfenvinphos and phosmet, has been performed by using an innovative WO3 nanostructure as photoanode. The nanostructure has been synthesized by anodization in acidic media in the presence of a very small amount (0.05 M) of H2O2, and its composition as well as its photoelectrochemical properties have been characterized using X-ray Photoelectron Spectroscopy and X-ray diffraction as composition technique and photoelectrochemical impedance spectroscopy as photoelectrochemical analysis. After 24 h of experiment, a degradation of 95% of chlorfenvinphos, 99.9% of phosmet and 100% …

NanostructureGeneral Chemical EngineeringKinetics02 engineering and technology010402 general chemistry01 natural sciencesINGENIERIA QUIMICAAnalytical Chemistrychemistry.chemical_compoundDegradationX-ray photoelectron spectroscopyElectrochemistryPesticidesUHPLC-Q-TOF/MSChlorfenvinphosPhosmet021001 nanoscience & nanotechnologyWO3 nanostructures0104 chemical sciencesDielectric spectroscopychemistryDegradation (geology)Photoelectrocatalysis0210 nano-technologyFenamiphosNuclear chemistry
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Grand canonical ensemble approach to electrochemical thermodynamics, kinetics, and model Hamiltonians

2021

The unique feature of electrochemistry is the ability to control reaction thermodynamics and kinetics by the application of electrode potential. Recently, theoretical methods and computational approaches within the grand canonical ensemble (GCE) have enabled to explicitly include and control the electrode potential in first principles calculations. In this review, recent advances and future promises of GCE density functional theory and rate theory are discussed. Particular focus is devoted to considering how the GCE methods either by themselves or combined with model Hamiltonians can be used to address intricate phenomena such as solvent/electrolyte effects and nuclear quantum effects to pr…

Physicsrate theoryproton-coupled electron transfertiheysfunktionaaliteoriaKineticsThermodynamics02 engineering and technologyelectron transfer010402 general chemistry021001 nanoscience & nanotechnologyElectrochemistry01 natural sciencessähkökemia0104 chemical sciencesAnalytical ChemistryGrand canonical ensembleelektrokatalyysiTheoretical methodsElectrochemistryelectrocatalysiselektrolyytitDensity functional theory0210 nano-technologydensity functional theoryElectrode potentialCurrent Opinion in Electrochemistry
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Customized WO3 nanoplatelets as visible-light photoelectrocatalyst for the degradation of a recalcitrant model organic compound (methyl orange)

2018

[EN] WO3 nanoplatelets have been synthesized by electrochemical anodization in acidic electrolytes containing two different complexing agents: fluorides and hydrogen peroxide. The influence of the morphology and size of these nanoplatelets on their photoelectrocatalytic performance has been studied following the degradation of a model organic recalcitrant compound, such as methyl orange (MO). The effect of several supporting electrolytes on this photodegradation process has also been checked. The best MO decoloration was observed for nanoplatelets fabricated in the presence of low H2O2 concentrations, whose distribution and small size made them expose a very high surface area to the problem…

NanostructureComplexing agentsGeneral Chemical EngineeringGeneral Physics and Astronomy02 engineering and technologyElectrolyte010402 general chemistry01 natural sciencesOrganic compoundINGENIERIA QUIMICAchemistry.chemical_compoundMethyl orangeHydrogen peroxidePhotodegradationchemistry.chemical_classificationNanoestructuresAnodizingGeneral Chemistry021001 nanoscience & nanotechnologyWO3 nanostructures0104 chemical sciencesElectroquímicachemistryChemical engineeringMethyl orangePhotoelectrocatalysisAnodization0210 nano-technologyVisible spectrum
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