Search results for "Electrode material"

showing 10 items of 13 documents

Use of Boron‐Doped Diamond Electrodes in Electro‐Organic Synthesis

2019

Boron doped diamondElectrode materialMaterials sciencebusiness.industryElectrochemistryCatalysischemistry.chemical_compoundSemiconductorchemistryChemical engineeringElectrodeElectrochemistryOrganic synthesisbusinessChemElectroChem
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Electrochemical synthesis of benzoxazoles from anilides - a new approach to employ amidyl radical intermediates.

2017

A novel electrochemical method for the synthesis of benzoxazoles from readily available anilides is reported. Various functionalities are tolerated and good yields can be achieved. By employing common electrode materials and a simple constant current protocol, this method is an attractive new alternative to conventional pathways.

Electrode material010405 organic chemistryChemistryMetals and AlloysGeneral Chemistry010402 general chemistryElectrochemistry01 natural sciencesCombinatorial chemistryCatalysis0104 chemical sciencesSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsMaterials ChemistryCeramics and CompositesConstant currentOrganic chemistryChemical communications (Cambridge, England)
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Magnetic and structural approach for understanding the electrochemical behavior of LiNi0.33Co0.33Mn0.33O2 positive electrode material

2013

Abstract A systematic study has been performed to investigate the structural and magnetic changes in LiNi 0.33 Mn 0.33 Co 0.33 O 2 , a member of the LiNi y Mn y Co 1–2 y O 2 series, upon chemical lithium deintercalation. Structural characterization of the chemically delithiated Li x Ni 0.33 Mn 0.33 Co 0.33 O 2 samples indicates that the initial rhombohedral symmetry (α-NaFeO 2 type structure) is maintained in the whole 0.3 ≤  x  ≤ 1.0 composition range. Less than 1% variation in the hexagonal unit cell volume was evidenced showing a good structural stability of this sample. SEM pictures of the delithiated phases confirm this stability. Indeed, the particle size average undergoes a small dec…

Electrode materialChemistryGeneral Chemical EngineeringAnalytical chemistrychemistry.chemical_elementElectrochemistrylaw.inventionSQUIDCrystallographyStructural stabilitylawElectrochemistryAntiferromagnetismLithiumParticle sizeElectron paramagnetic resonanceElectrochimica Acta
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Peculiarities of Phase Formation in Mn-Based Na SuperIonic Conductor (NaSICon) Systems: The Case of Na1+2xMnxTi2–x(PO4)3 (0.0 ≤ x ≤ 1.5)

2021

This project has received funding from the European Regional Development Fund (Project no. 01.2.2-LMT-K-718-02–0005) under grant agreement with the Research Council of Lithuania (LMTLT). We thank the High Performance Computing Center “HPC Saulėtekis” at the Faculty of Physics, Vilnius University, for the use of computational resources.

Electrode materialEnergyMaterials scienceGeneral Chemical EngineeringInorganic chemistrychemistry.chemical_element:NATURAL SCIENCES::Physics [Research Subject Categories]Transition metalsGeneral ChemistryManganesePhosphatePhase formationArticleConductorchemistry.chemical_compoundchemistryMaterials ChemistryFast ion conductorDiffractionElectrodesMaterialsChemistry of Materials
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Processes during preparation of lead/acid battery positive plates from tetrabasic lead sulfate (4BS) pastes

1993

Abstract Tthe processes studied during this investigation were paste mixing and curing. Tetrabasic lead sulfate 4BS pastes were prepared by solution and paste methods both from α-PbO and mill oxides, and the development of 4BS was carried out already during the paste mixing stage. the 4BS pastes were characterized by SEM, TEM, XRD and wet-chemical methods, and the results were compared with those obtained from the characterization of corresponding tribasic lead sulfate (3BS) pastes. The preparation method was found to be one dominating factor affecting both the morphology and structure of 4BS active masses. The selection of raw material gave an additional effect on the morphology. Additiona…

Electrode materialLead sulfateRenewable Energy Sustainability and the EnvironmentChemistryScanning electron microscopeInorganic chemistryEnergy Engineering and Power TechnologyRaw materialMicrographyPreparation methodChemical engineeringElectrical and Electronic EngineeringPhysical and Theoretical ChemistryLead–acid batteryCuring (chemistry)Journal of Power Sources
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Earlier Developed Techniques

2014

The first electrochemical experiments were performed with solid materials, esp. metals. However, these experiments, conducted in the eighteenth and nineteenth centuries, were directed toward the elucidation of the basic features of the electrical action of chemical substances and the chemical action of electricity. Initially, metals played the major role; only later it became obvious that many chemical compounds possess metallic or semiconducting properties that can be utilized in electrochemical cells. Parallel to the studies of new electrode materials, solid electrolytes were discovered and entire solid galvanic cells could be constructed. In this book, we will entirely neglect pure solid…

Electrode materialMaterials scienceComposite electrodeGalvanic cellFast ion conductorNanotechnologySolid materialElectrochemistryElectrochemical cell
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The Li Ni0.2Mn0.2Co0.6O2 electrode materials: A structural and magnetic study

2012

Graphical abstract: EPR signal of the Li{sub 0.6}Co{sub 0.6}Ni{sub 0.2}Mn{sub 0.2}O{sub 2} composition showing that Mn{sup 4+} ions are the solely paramagnetic ions in the structure. Highlights: Black-Right-Pointing-Pointer LiCo{sub 0.6}Ni{sub 0.2}Mn{sub 0.2}O{sub 2} was prepared by the combustion method with sucrose as a fuel. Black-Right-Pointing-Pointer Chemical delithiaition was performed by using NO{sub 2}BF{sub 4} oxidizing agent. Black-Right-Pointing-Pointer The rhombohedral symmetry was preserved upon lithium removal. Black-Right-Pointing-Pointer Lithium extraction leads to Ni{sup 2+} oxidation to Ni{sup 4+} followed by Co{sup 3+} oxidation. Black-Right-Pointing-Pointer The EPR narr…

Electrode materialMaterials scienceMechanical EngineeringAnalytical chemistrychemistry.chemical_elementCondensed Matter PhysicsMagnetic susceptibilityIonlaw.inventionParamagnetismchemistryMechanics of MaterialslawPhase (matter)General Materials ScienceLithiumElectron paramagnetic resonanceSolid solutionMaterials Research Bulletin
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Low-Temperature Solution Processable Electrodes for Piezoelectric Sensors Applications

2013

Piezoelectric thin-film sensors are suitable for a wide range of applications from physiological measurements to industrial monitoring systems. The use of flexible materials in combination with high-throughput printing technologies enables cost-effective manufacturing of custom-designed, highly integratable piezoelectric sensors. This type of sensor can, for instance, improve industrial process control or enable the embedding of ubiquitous sensors in our living environment to improve quality of life. Here, we discuss the benefits, challenges and potential applications of piezoelectric thin-film sensors. The piezoelectric sensor elements are fabricated by printing electrodes on both sides of…

Electrode materialMaterials sciencePiezoelectric sensor213 Electronic automation and communications engineering electronicsLiving environmentElectrodeGeneral EngineeringGeneral Physics and AstronomyProcess controlNanotechnologyBiocompatible materialPiezoelectricityEnvironmentally friendlyJapanese Journal of Applied Physics
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Flash microwave synthesis of trevorite nanoparticles.

2008

Nickel ferrite nanoparticles have several possible applications as cathode materials for rechargeable batteries, named 'lithium-ion' batteries. In this study, NiFe{sub 2}O{sub 4} was prepared by microwave induced thermohydrolysis. The obtained nanoparticles were characterized by scanning electron microscopy (SEM) and energy dispersive X-ray spectroscopy (EDX), X-ray diffraction (XRD), BET method, transmission electron microscopy (TEM) and small angle X-ray scattering (SAXS). All the results show that the microwave one-step flash synthesis leads in a very short time to NiFe{sub 2}O{sub 4} nanoparticles with elementary particles size close to 4-5 nm, and high specific surfaces (close to 240 m…

Materials scienceNanostructureScanning electron microscopeXRDAnalytical chemistryNanoparticle02 engineering and technology010402 general chemistry01 natural sciences7. Clean energyNanomaterialsInorganic ChemistryMaterials ChemistryIron oxideFerritesPhysical and Theoretical ChemistryNickel oxideX-ray spectroscopySmall angle X ray scatteringParticle sizeDispersive spectrometryLithium batteryNanostructured materials021001 nanoscience & nanotechnologyCondensed Matter Physics0104 chemical sciencesElectronic Optical and Magnetic MaterialsElectrode materialMicrowave heatingOrganic conductorsX-ray crystallographyCeramics and CompositesFerrite (magnet)NanoparticlesNiFe2O40210 nano-technologyScanning electron microscopyMicrowaveTransmission electron microscopyNanomaterial synthesis
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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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