Search results for "electrochemical analysis"

showing 4 items of 4 documents

Lanthanide–saccharide chemistry: synthesis and characterisation of Ce(III)–saccharide complexes

2000

A series of nine Ce(III) complexes has been synthesised with seven different monosaccharides (D-glucose, D-fructose, D-galactose, D-mannose, L-sorbose, D-ribose and D-xylose) and two different disaccharides (D-maltose and L-lactose), and these have been characterised with various analytical, spectral, magnetic and electrochemical techniques. The NMR studies have highlighted some interesting features about the metal-ion-binding pattern of the saccharides. Some additional coordination has been proposed along with the chelating groups in the saccharide molecules, based on the shifts in 13C NMR spectra. On the other hand, solution absorption studies and solid-state magnetic susceptibilities hav…

Absorption SpectraLanthanideMagnetic Resonance SpectroscopyStereochemistryMetal ions in aqueous solutionMannoseDisaccharidesBiochemistryAnalytical Chemistrychemistry.chemical_compoundSpectroscopy Fourier Transform InfraredElectrochemistryMonosaccharideOrganic chemistryMoleculeChelating Agentschemistry.chemical_classificationMolecular StructureSpectrometersCircular DichroismMetal IonsMonosaccharidesOrganic ChemistryElectric ConductivityElectron Spin Resonance SpectroscopyFructoseCeriumGeneral MedicineCarbon-13 NMRSorbosechemistrySpectrophotometryMetals Rare EarthElectrochemical AnalysisCarbohydrate Research
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Physicochemical characterization and photoelectrochemical analysis of iron oxide films

2013

Iron oxide films with a nanoporous structure were grown by anodizing sputter-deposited Fe in a fluoride containing ethylene glycol solution and annealed under air exposure at different temperatures. X-ray diffraction and Raman spectroscopy allowed to identify the presence of hematite and/or magnetite after thermal treatment for films annealed at T ≥ 400 °C under air exposure. According to GDOES compositional depth profiles, the thermal treatment sensitively reduced the amount of fluoride species incorporated into the film during the anodizing process. A band gap value of ~2.0 eV was estimated for all the investigated layers, while a flat band potential dependent on both the growth condition…

Materials scienceAnodizingNanoporousBand gapInorganic chemistryAnalytical chemistryIron oxideThermal treatmentHematiteCondensed Matter PhysicsPhysicochemical characterization photoelectrochemical analysis iron oxide filmssymbols.namesakechemistry.chemical_compoundSettore ING-IND/23 - Chimica Fisica Applicatachemistryvisual_artElectrochemistryvisual_art.visual_art_mediumsymbolsGeneral Materials ScienceElectrical and Electronic EngineeringRaman spectroscopyFluoride
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Quadruply-bonded dimolybdenum compounds: Reactivity towards TCNE. Structural evidences for the 1-D polymer [Mo2(O2 CCF3)4(TCNE)]∞

2005

cited By 3; International audience; Reaction of [Mo2(O2CR)4] (R = CF 3, 1) with TCNE in toluene affords the new compound [Mo2(O2CCF3)4 (TCNE)·6H5CH3 (2). The structure of 2 is built on [Mo2(O2 CCF3)4] fragments having the usual paddlewheel structure of 1 (Mo-Mo 2.1117(8) Å) and TCNE units. Each polynitrile moiety acts as a bridging ligand between two Mo2 fragments (Mo-N 2.875(4) Å) affording 1-D polymeric chains crossing in the crystal; the toluene molecules occupy the cavities between the chains. 13C NMR, IR and electrochemical data clearly show that formation of 2 does not involve electron density transfer from dimolybdenum fragment to the TCNE unit, which remains in 2 in its neutral stat…

chemical reactionReaction mechanismStereochemistryCoordination polymerGeneral Chemical EngineeringpolymerCrystal structureTetracyanoethylene010402 general chemistryligand01 natural scienceschemistry.chemical_compoundmolybdenumelectrochemical analysisMoietyMoleculetoluene[CHIM]Chemical SciencesReactivity (chemistry)electron transportchemical bondinfrared spectroscopychemical binding010405 organic chemistryChemistryarticleBridging ligandGeneral Chemistrycarbon nuclear magnetic resonance0104 chemical sciencesCrystallographychemical analysispolymerizationchemical structureorganometallic compound
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Adsorption of gelatin during electrodeposition of copper and tin-copper alloys from acid sulfate electrolyte

2014

International audience; An acid Cu–Sn deposition bath was developed, and copper and copper–tin coatings were electrodeposited on polycrystalline platinum. The effect of gelatin on copper and copper–tin electrodeposition from acid sulfate solutions has been investigated by a variety of electrochemical methods (voltammetric studies and electrochemical quartz crystal microbalance) as well as by morphologic technique (scanning electron microscopy). The electrochemical results have shown that the overpotential is required when gelatin is added, indicating the presence of interaction between the additive and the coating. From the results of X-ray photoelectron spectroscopy, PM-IRRAS and cyclic vo…

food.ingredientMaterials science020209 energyInorganic chemistryElectrochemical analysischemistry.chemical_element02 engineering and technologyOverpotentialElectrochemistryGelatinAdsorptionfoodElectrodeposition0202 electrical engineering electronic engineering information engineeringMaterials ChemistryCu–Sn alloy[CHIM]Chemical SciencesSurfaces and InterfacesGeneral ChemistryQuartz crystal microbalance021001 nanoscience & nanotechnologyCondensed Matter PhysicsCopperSurfaces Coatings and FilmschemistryChemical engineeringGelatinAdsorptionCyclic voltammetry0210 nano-technologyPlatinum
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