Search results for "Selective catalytic reduction"

showing 7 items of 17 documents

The effect of trivalent framework heteroatoms in Cu-CHA on the Selective Catalytic Reduction of NO

2021

Abstract The effect of the trivalent framework atoms (Si4+/M3+ = 13-105) in Cu exchanged CHA-type zeolites was investigated for the selective catalytic reduction of NO with NH3. While the increased hydrophobicity of B-CHA compared to Al-CHA could make it a good candidate for low temperature SCR, the material was too unstable under reaction conditions and the exchanged Cu2+ did not remain isolated. Consequently a lower activity and selectivity than for Al-CHA were observed. Ga-CHA on the other hand showed a similar Cu2+ speciation as Al-CHA at similar Si4+/M3+ ratios. The difference in catalytic activity was remarkably small. While Ga-CHA was less stable upon hydrothermal aging, this was mar…

Reaction conditionsChemistryProcess Chemistry and Technologymedia_common.quotation_subjectHeteroatomInorganic chemistrySelective catalytic reductionCatalysisHydrothermal circulationCatalysisSpeciationSelectivityZeolitemedia_commonApplied Catalysis A: General
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Transformation synthesis of aluminosilicate SSZ-39 zeolite from ZSM-5 and beta zeolite

2019

Aluminosilicate SSZ-39 zeolite has been successfully prepared by transformation from ZSM-5 and beta zeolite in the presence of N,N-diethyl-cis-2,6-dimethylpiperidinium hydroxide (DMPOH) under hydrothermal conditions. Catalytic tests in the selective catalytic reduction of NOx with NH3 (NH3-SCR) show that the copper-exchanged products synthesized from the interzeolite transformation exhibit excellent catalytic performance.

Renewable Energy Sustainability and the EnvironmentChemistrySelective catalytic reduction02 engineering and technologyGeneral Chemistry021001 nanoscience & nanotechnologyHydrothermal circulationCatalysischemistry.chemical_compoundChemical engineeringAluminosilicateHydroxideGeneral Materials ScienceZSM-50210 nano-technologyZeoliteNOxJournal of Materials Chemistry A
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From a fixed bed Ag–alumina catalyst to a modified reactor design: how to enhance the crucial heterogeneous–homogeneous reactions in HC-SCR

2004

Abstract A highly active Ag/alumina catalyst for continuous reduction of NO to nitrogen with n-octane under lean conditions was prepared. It was observed in the reactor set-up experiments for optimization of the converter, that surface generated gas phase species are crucial for obtaining high conversion. EPR and matrix isolated FTIR studies at low temperature (10–18 K) were performed for identification of the radicals. Experimental data, observed at steady state conditions in the temperature range 300–550 °C, was used to produce an artificial neural network model of the catalytic converter with four catalyst beds.

Steady stateWaste managementApplied MathematicsGeneral Chemical Engineeringchemistry.chemical_elementSelective catalytic reductionGeneral ChemistryAtmospheric temperature rangeNitrogenIndustrial and Manufacturing EngineeringCatalysislaw.inventionchemistryChemical engineeringlawCatalytic converterFourier transform infrared spectroscopyElectron paramagnetic resonanceChemical Engineering Science
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Pd-Cu catalysts supported on anion exchange resin for the simultaneous catalytic reduction of nitrate ions and reductive dehalogenation of organochlo…

2019

International audience; The present work proposes the simultaneous removal of these classes of pollutants by a catalytic hydrotreatment processes. For this purpose, bimetallic Pd-Cu catalysts (with mass ratio Pd:Cu of 4:1) supported on macroporous strong base anion resin were prepared by different methods. The catalysts were characterized (by XRD, SEMEDX, XPS, AAS and H-2 chemisorption) and tested in a continuous flow system. The selected catalyst preparation protocol consists in a two-step method, which implies the deposition of palladium by ion exchange and the subsequent deposition of copper by controlled reaction on the surface of the pre-reduced palladium. The effectiveness of the cata…

[SDV]Life Sciences [q-bio]Inorganic chemistrypd-cu catalystchemistry.chemical_element010402 general chemistry7. Clean energy01 natural sciencesCatalysisCatalysis[CHIM]Chemical SciencesIon-exchange resinBimetallic stripComputingMilieux_MISCELLANEOUShydrodechlorinationAqueous solutionIon exchange010405 organic chemistryChemistryProcess Chemistry and Technologyanion exchange resinSelective catalytic reductionwater treatmentnitrate reduction0104 chemical sciences13. Climate actionChemisorptionPalladiumApplied Catalysis A: General
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Improvement of catalytic activity over Cu--Fe modified Al-rich Beta catalyst for the selective catalytic reduction of NOx with NH3

2016

Copper and iron bimetal modified Al-rich Beta zeolites from template-free synthesis were prepared for selective catalytic reduction (SCR) of NOx with NH3 in exhaust gas streams. Comparing to the Cu-based and Fe-based mono-component Beta catalysts, Cu(3.0)-Fe(1.3)-Beta bi-component catalyst shows better low-temperature activity and wider reaction-temperature window. Over 80% of NO conversion can be achieved at the temperature region of 125–500 °C. Due to the synergistic effect of copper and iron evidenced by XRD, UV–Vis–NIR, EPR and XPS measurements, the dispersion state of active components as well as the ratio of Cu2+/Cu+ and Fe3+/Fe2+ were improved over Cu(3.0)-Fe(1.3)-Beta. Isolated Cu2+…

inorganic chemicalsInorganic chemistryCu--Fe-Betachemistry.chemical_elementNanotechnology02 engineering and technology010402 general chemistryDispersion (geology)01 natural sciencesCatalysisBimetalAl-rich BetaX-ray photoelectron spectroscopyGeneral Materials ScienceNOxSelective catalytic reductionGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter PhysicsCopperSulfur0104 chemical scienceschemistryMechanics of MaterialsSynergistic effect0210 nano-technologyNH3-SCR
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NOx selective catalytic reduction at high temperatures with mixed oxides derived from layered double hydroxides

2012

[EN] Mixed oxides derived from layered double hydroxides (LDHs) have been investigated as potential catalysts for the NOx removal at high temperatures. The best results were obtained with Co–Al mixed oxides derived from LDHs that are active at 750 ◦C in the presence of oxygen and water. These catalysts could reduce or/and decompose the NOx formed in the dense phase of the FCC regenerator, being deactivated at oxygen concentrations higher than 1.5%. Nevertheless this deactivation is not permanent and they would be regenerated after reduction with hydrogen at 530 ◦C. The influence of the layered double hydroxides (LDHs) preparation method on the catalyst activity was studied, observing that t…

inorganic chemicalsMaterials scienceHydrogenLayered double hydroxidesInorganic chemistrychemistry.chemical_element02 engineering and technologyNOxengineering.material010402 general chemistry01 natural sciences7. Clean energyOxygenCatalysisMixed oxidesINGENIERIA QUIMICACatalysisCrystallinityFCCChemical compositionNOxLayered double hydroxidesSelective catalytic reductionGeneral Chemistry021001 nanoscience & nanotechnology0104 chemical scienceschemistry13. Climate actionengineering0210 nano-technology
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Catalytic applications of TiO2

2021

Abstract The use of TiO2 as heterogeneous catalyst and/or active support for metals or other oxides is here reported. Many reactions of industrial relevance involve, in fact, titania-based catalysts, among them, NOx abatement, Fischer–Tropsch and water–gas shift, Deacon and Claus processes, hydrodesulfurizations and hydrogenations, selective reductions and selective oxidations. This chapter aims to discuss the main applications of TiO2, in its different forms, as effective support or catalyst for thermocatalytic and photo-thermocatalytic reactions, focusing on the role of its structural and physicochemical properties on the catalytic performance (activity, selectivity, stability).

supported metalsTitaniaChemistryselective catalytic reductionHeterogeneous catalysisCombinatorial chemistryCatalysisCatalysisstrong metal and support interactionMetal oxidesSettore CHIM/07 - Fondamenti Chimici Delle TecnologieSelectivityActive supportNOx
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