Search results for "electrocatalysis"

showing 10 items of 35 documents

Monofunctional pyrenes at carbon nanotube electrodes for direct electron transfer H2O2 reduction with HRP and HRP-bacterial nanocellulose

2021

Abstract The non-covalent modification of carbon nanotube electrodes with pyrene derivatives is a versatile approach to enhance the electrical wiring of enzymes for biosensors and biofuel cells. We report here a comparative study of five pyrene derivatives adsorbed at multi-walled carbon nanotube electrodes to shed light on their ability to promote direct electron transfer with horseradish peroxidase (HRP) for H2O2 reduction. In all cases, pyrene-modified electrodes enhanced catalytic reduction compared to the unmodified electrodes. The pyrene N-hydroxysuccinimide (NHS) ester derivative provided access to the highest catalytic current of 1.4 mA cm−2 at 6 mmol L−1 H2O2, high onset potential …

Biomedical EngineeringBiophysics02 engineering and technologyCarbon nanotube01 natural sciences7. Clean energyNanocelluloselaw.inventionCatalysisBiofuel cell cathodeHorseradish peroxidasechemistry.chemical_compoundElectron transferlawElectrochemistry[CHIM]Chemical SciencesComputingMilieux_MISCELLANEOUSChemistry010401 analytical chemistryGeneral MedicineNanocellulose electrode021001 nanoscience & nanotechnologyCombinatorial chemistry0104 chemical sciencesElectrochemical gas sensorElectrochemical sensorDirect electron transferElectrodeBioelectrocatalysisPyrene0210 nano-technologyBiosensorBiotechnology
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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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eta1-Allypalladium complexes with tridentate PNP’ ligand for the assembly of modified Screen Printed Electrodes: an electrochemical study.

2015

Specific Pd-based organometallic complex, in particular the [Pd(η1-CH2–CH=CH2)(P–N–P’)]BF4 was used for the assembly of chemically modified Screen Printed Electrodes (SPEs) and their electrochemical reactivity was also investigated. For this purpose potassium ferricyanide, hexaammineruthenium(III) chloride, sodium hexachloroiridate-(III) hydrate, ascorbic acid (AA), uric acid (UA), acetaminophen (Ac), guanine (G) and adenine (A) were used to study the electron-transfer processes, which occurred at modified SPEs, fabricated by using the [Pd(η1-CH2–CH=CH2)(P–N–P’)]BF4, applying the drop casting procedure. Interesting results were obtained in the case of the guanine (G) quantitative detection,…

Detection limitElectrocatalysis towards guanine/GP-N-P complexesGuanineAnalytical chemistryPd center dot P-N-P complexesElectrochemistryAscorbic acidHeterogeneous electron-transfer kinetic constantsAnalytical Chemistry: Pdchemistry.chemical_compoundPotassium ferricyanidechemistrychemically modified SPEsElectrodeElectrochemistryReactivity (chemistry)Settore CHIM/01 - Chimica Analitica: Pd; P-N-P complexes; chemically modified SPEs; Electrochemistry; Heterogeneous electron-transfer kinetic constants electro-catalysis towards nucleic acidsHydrateNuclear chemistryelectro-catalysis towards nucleic acids
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Electro- and Photo-driven Reduction of CO 2 by a trans -(Cl)-[Os(diimine)(CO) 2 Cl 2 ] Precursor Catalyst: Influence of the Diimine Substituent and A…

2016

A series of [OsII(NN)(CO)2Cl2] complexes where NN is a 2,2′-bipyridine ligand substituted in the 4,4′ positions by H (C1), CH3 (C2), C(CH3)3 (C3), or C(O)OCH(CH3)2 (C4) has been studied as catalysts for the reduction of CO2. Electrocatalysis shows that the selectivity of the reaction can be switched toward the production of CO or HCOO− with an electron-donating (C2, C3) or -withdrawing (C4) substituent, respectively. The electrocatalytic process is a result of the formation of an Os0-bonded polymer, which was characterized by electrochemistry, UV/Visible and EPR spectroscopies. Photolysis of the complexes under CO2 in DMF+TEOA produces CO as a major product with a remarkably stable turnover…

DimerSubstituent010402 general chemistryPhotochemistryElectrocatalyst01 natural sciencesCatalysisCatalysisphotoinduced electron transferInorganic Chemistrychemistry.chemical_compound[CHIM.ANAL]Chemical Sciences/Analytical chemistryelectrocatalysisPhysical and Theoretical Chemistryta116DiimineComputingMilieux_MISCELLANEOUS010405 organic chemistryChemistryLigandOrganic Chemistryosmium0104 chemical sciencesCO2 reductionPhotocatalysisSelectivityphotocatalysis
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Computational Screening of Doped Graphene Electrodes for Alkaline CO2 Reduction

2020

The electrocatalytic CO<sub>2</sub> reduction reaction (CO<sub>2</sub>RR) is considered as one of the most promising approaches to synthesizing carbonaceous fuels and chemicals without utilizing fossil resources. However, current technologies are still in the early phase focusing primarily on identifying optimal electrode materials and reaction conditions. Doped graphene-based materials are among the best CO<sub>2</sub>RR electrocatalysts and in the present work we have performed a computational screening study to identify suitable graphene catalysts for CO<sub>2</sub>RR to CO under alkaline conditions. Several types of modified-graphene frame…

Economics and Econometricsproton-coupled electron transferMaterials scienceStandard hydrogen electrodeEnergy Engineering and Power Technologylcsh:A02 engineering and technology010402 general chemistryElectrochemistryElectrocatalystelectrosorption01 natural sciencesRedoxlaw.inventionCatalysisElectron transferelektrokatalyysilawgrafeenielectrocatalysisdensity functional theoryRenewable Energy Sustainability and the EnvironmentGraphenegraphenetiheysfunktionaaliteoria021001 nanoscience & nanotechnology0104 chemical sciencesFuel TechnologyChemical engineeringElectrodelcsh:General Works0210 nano-technology
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Fundamentals of photoelectrocatalysis

2022

Photoelectrocatalysis combines heterogeneous photocatalysis and electrocatalysis principles for numerous processes including the degradation of harmful compounds, the generation of H2 and O2 from water splitting, the reduction of CO2 or the photoelectrocatalytic synthesis of valuable organic molecules otherwise difficult to be synthetized with classical approaches. The recent progress of photoelectrocatalysis is heavily related to the development of materials, especially in 2D and nano materials. Highly ordered nanomaterials such as graphene, nanotubes, nanowires, etc. are gaining more attention due to their high surface area and excellent conductivity. Other challenges are the development …

Electro kinetics Electrode Electrode potential Electron transfer Interphase Photocatalysis: Electrocatalysis Photoelectrocatalysis SemiconductorsPhotoelectrocatalysis Photocatalysis: Electrocatalysis Electrode Semiconductors Interphase Electron transfer Electro kinetics Electrode potentialSettore CHIM/07 - Fondamenti Chimici Delle Tecnologie
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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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Interfacial Self-Assembly of Water-Soluble Cationic Porphyrins for the Reduction of Oxygen to Water

2012

Meet at the border: Assembly of the water-soluble cobalt tetrakis(N-methylpyridinium-4-yl)porphyrin [CoTMPyP]4+ at soft interfaces is enhanced and stabilized by its interfacial interaction with the lipophilic anion (C6F5)4B−. The supramolecular structure thus formed (see picture) provides excellent catalytic activity in the four-electron reduction of oxygen.

Inorganic chemistrySupramolecular chemistry2Nd-Harmonic Generationchemistry.chemical_element010402 general chemistryporphyrinsOxygen01 natural sciencesCatalysisMolecular ElectrocatalysisCatalysisinterfacesPolarized Interfacechemistry.chemical_compound[SPI]Engineering Sciences [physics]AggregationPolymer chemistry[CHIM]Chemical Sciencesliquid-liquid interfacesComputingMilieux_MISCELLANEOUS[PHYS]Physics [physics]oxygen reduction reactionDioxygen010405 organic chemistryCationic polymerizationGeneral ChemistryGeneral Medicineself-assemblyPorphyrin3. Good health0104 chemical scienceschemistryTetrathiafulvaleneSelf-assemblyImmiscible Electrolyte-SolutionsCobaltTetrathiafulvalene
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Photoelectrocatalyzed degradation of organophosphorus pesticide fenamiphos using WO3 nanorods as photoanode

2020

[EN] In this study, WO3 nanostructures were synthesized by the electrochemical anodization technique to use them on the degradation of persistent organic compounds such as the pesticide fenamiphos. The acids electrolyte used during the anodization were two different: 1.5 M H2SO4-0.05 M H2O2 and 1.5 M CH4O3S-0.05 M H2O2. Once the samples have been manufactured, they have been subjected to different tests to analyze the properties of the nanostructures. With Field Emission Scanning Electron Microscopy (FESEM) the samples have been examined morphologically, their composition and crystallinity has been studied through Raman Spectroscopy and their photoelectrochemical behaviour by Photoelectroch…

InsecticidesEnvironmental EngineeringMaterials scienceHealth Toxicology and Mutagenesis0208 environmental biotechnology02 engineering and technologyElectrolyte010501 environmental sciences01 natural sciencesINGENIERIA QUIMICAchemistry.chemical_compoundCrystallinitysymbols.namesakeDegradationEnvironmental ChemistryFenamiphos0105 earth and related environmental sciencesNanoestructuresWO3 nanostructureAnodizingPublic Health Environmental and Occupational HealthGeneral MedicineGeneral ChemistryPollution020801 environmental engineeringDielectric spectroscopyPesticideChemical engineeringchemistrysymbolsDegradation (geology)NanorodPhotoelectrocatalysisRaman spectroscopyFenamiphos
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Novel TiO2-WO3 self-ordered nanotubes used as photoanodes: Influence of Na2WO4 and H2O2 concentration during electrodeposition

2021

[EN] Hybrid TiO2-WO3 nanostructures has been synthesized by electrochemical anodization under controlled hydrodynamic conditions followed by electrodeposition in the presence of different contents of Na2WO4 (5, 15 and 25 mM) and H2O2 (20, 30 and 40 mM). The influence of the electrolyte used for electrodeposition on the morphology, crystalline structure and photoelectrochemical response for water splitting has been evaluated through Field Emission Electronic Microscopy, High-Resolution Transmission Electron Microscopy, Confocal Raman Spectroscopy, Grazing Incidence X Ray Diffraction, X-Ray Photoelectron Spectroscopy, Atomic Force microscopy and photocurrent versus potential measurements. Add…

Materials science02 engineering and technologyElectrolyte010402 general chemistry01 natural sciencesINGENIERIA QUIMICAX-ray photoelectron spectroscopyElectrodepositionMaterials ChemistryTiO2-WO3 nanostructuresWater splittingPhotocurrentAnodizingHeterojunctionSurfaces and InterfacesGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter Physics0104 chemical sciencesSurfaces Coatings and FilmsField electron emissionChemical engineeringTransmission electron microscopyWater splittingPhotoelectrocatalysisAnodization0210 nano-technology
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