Search results for "Manganese dioxide"

showing 3 items of 3 documents

Адсорбционные свойства диоксидномарганцевого электрода в водных растворах

1990

Advisor: Пурин, Бруно Андреевич ; Слайдинь, Гунар Янович ; Восекалнс, Александр Викторович

:NATURAL SCIENCES::Chemistry::Physical chemistry [Research Subject Categories]Manganese dioxide electrodesElektroķīmijaElektrodi mangāna dioksīdaMangāna dioksīda elektrodiДиоксидномарганцевые электродыФизическая химияElektrodi oksīduВодные растворыЭлектроды оксидныеЭлектрохимияАдсорбцияFizikālā ķīmijaElectrochemistryЭлектроды диоксид марганца
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DFT and kinetic evidences of the preferential CO oxidation pattern of manganese dioxide catalysts in hydrogen stream (PROX)

2022

Abstract The oxidation functionality of Mn(IV) sites has been assessed by density functional theory (DFT) analysis of adsorption and activation energies of CO, H2 and O2 on a model Mn4O8 cluster. DFT calculations indicate that Mn(IV) atoms prompt an easy CO conversion to CO2 via a reaction path involving both catalyst and gas-phase oxygen species, while much greater energy barriers hinder H2 oxidation. Accordingly, a MnCeOx catalyst (Mnat/Ceat, 5) with large exposure of Mn(IV) sites shows a remarkable CO oxidation performance at T ≥ 293 K and no H2 oxidation activity below 393 K. Empiric kinetics disclose that the catalyst-oxygen abstraction step determines both CO and H2 oxidation rate, al…

HydrogenProcess Chemistry and TechnologyInorganic chemistryKineticsPROX2chemistry.chemical_elementPreferential CO oxidationManganeseReaction mechanism and kineticsOxygenCatalysisCatalysisand CO oxidationHDFT analysisAdsorptionchemistryDensity functional theoryDFT analysis; H; 2; and CO oxidation; Manganese dioxide catalyst; Preferential CO oxidation; Reaction mechanism and kineticsH2 and CO oxidationGeneral Environmental ScienceManganese dioxide catalyst
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Effects of electrolyte doping on electrodeposited nanostructured manganese oxide and chromium oxide

2020

Abstract Electrolyte additions are used to control the functionality of a nanostructured oxide. Dopant ions affect the size and shape of deposit crystallites and modify the host structure. Such ions can be incorporated into the deposit or form a separate oxide phase. The manganese dioxide family of polymorphs with ion-molecular sieve properties represents the additional possibilities of “template” effects of dopant ions on the phase composition, heterovalent substitution in the cationic sublattice, changes in morphology and alteration of nanocrystallite size during electrocrystallisation. The effects of electrolyte doping in electrodeposited, non-stoichiometric manganese dioxide (NH4+, Li+ …

Materials scienceOxideManganese dioxidechemistry.chemical_element02 engineering and technologyElectrolyteManganeseengineering.material010402 general chemistry01 natural sciencesNanomaterialschemistry.chemical_compoundLi batteryElectrodepositionChromium oxide-hydroxide thin filmHollanditeMaterials ChemistryPyrolusiteDopantSurfaces and InterfacesGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter Physics0104 chemical sciencesSurfaces Coatings and FilmschemistryChemical engineeringengineeringCrystalliteElectrode materials0210 nano-technologyElectrolyte dopingSurface and Coatings Technology
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