Search results for "Lithium"

showing 10 items of 680 documents

Structural and Spectroscopic Studies of the PCP-Bridged Heavy Chalcogen-Centered Monoanions [HC(PPh2E)(PPh2)]− (E = Se, Te) and [HC(PR2E)2]− (E = Se,…

2009

Selenium- and tellurium-containing bis(diphenylphosphinoyl)methane monoanions were prepared by oxidation of the anion [HC(PPh2)2]− with elemental chalcogens. The selenium-containing isopropyl derivative was synthesized by generating [H2C(PiPr2)2] via a reaction between [H2C(PCl2)2] and 4 equiv of iPrMgCl prior to in situ oxidation with selenium followed by deprotonation with LiNiPr2. The solid-state structures of the lithium salts of the monochalcogeno anions TMEDA·Li[HC(PPh2E)(PPh2)] (E = Se (Li7a), E = Te (Li7b)) and the dichalcogeno anions TMEDA·Li[HC(PR2Se)2] (R = Ph (Li8a), iPr (Li8c)) revealed five- and six-membered LiEPCP and LiSePCPSe rings, respectively. The homoleptic group 12 com…

Inorganic chemistrychemistry.chemical_elementMedicinal chemistryIonInorganic Chemistrychemistry.chemical_compoundChalcogenDeprotonationchemistryLithiumPhysical and Theoretical ChemistryHomolepticDerivative (chemistry)IsopropylSeleniumInorganic Chemistry
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A novel target of lithium therapy.

2000

Phosphatases converting 3'-phosphoadenosine 5'-phosphate (PAP) into adenosine 5'-phosphate are of fundamental importance in living cells as the accumulation of PAP is toxic to several cellular systems. These enzymes are lithium-sensitive and we have characterized a human PAP phosphatase as a potential target of lithium therapy. A cDNA encoding a human enzyme was identified by data base screening, expressed in Escherichia coli and the 33 kDa protein purified to homogeneity. The enzyme exhibits high affinity for PAP (K(m)1 microM) and is sensitive to subtherapeutic concentrations of lithium (IC(50)=0.3 mM). The human enzyme also hydrolyzes inositol-1, 4-bisphosphate with high affinity (K(m)=0…

Inositol-14-bisphosphateDNA ComplementaryBicinePhosphataseMolecular Sequence DataBiophysicschemistry.chemical_elementSaccharomyces cerevisiaeLithiummedicine.disease_causeBiochemistrychemistry.chemical_compoundStructural BiologyNucleotidasesComplementary DNAPhosphataseGeneticsmedicineEscherichia coliHumansAmino Acid SequenceCloning MolecularMolecular BiologyEscherichia coliIC50Chromatography High Pressure Liquidchemistry.chemical_classificationExpressed Sequence TagsBase Sequence3′-Phosphoadenosine 5′-phosphateCell BiologyMolecular biologyAdenosineAdenosine MonophosphatePhosphoric Monoester HydrolasesAdenosine DiphosphateEnzymechemistryBiochemistryLithiummedicine.drugHumanFEBS letters
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Zircon M127 - A Homogeneous Reference Material for SIMS U-Pb Geochronology Combined with Hafnium, Oxygen and, Potentially, Lithium Isotope Analysis

2016

Faculty of Geosciences, Geography and Astronomy, University of Vienna; Beijing SHRIMP Centre, Chinese Academy of Geological Sciences; European Commission [MEXC-CT-2005-024878]; FWF Austrian Science Fund [P20028-N10, P24448-N19]; U.S. National Science Foundation [EAR 1524336]

Isotopes of lithium010401 analytical chemistryGeochemistryMineralogychemistry.chemical_elementGeology010502 geochemistry & geophysics01 natural sciences7. Clean energy0104 chemical sciencesHafniumchemistryGeochemistry and PetrologyHomogeneousGeochronologyEuropean commissionGeology0105 earth and related environmental sciencesZircon
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Litiju saturošu keramiku cietfāžu sintēze un raksturošana

2021

“Litiju saturošu keramiku cietfāžu sintēze un raksturošana”. Seņko M., darba vadītājs vadošais pētnieks Dr. chem. Zariņš A. Zinātniskie konsultanti pētniece, Mg. chem. Avotiņa L. un pētniece, Mg. chem. Trimdale A. Bakalaura darbs, 45 lapas, 31 attēls, 5 tabulas, 54 literatūras avoti, 5 pielikumi. Latviešu valodā. Literatūras apskatā apkopota informācija par procesiem kodoltermiskās sintēzes reaktoros, litiju saturošu savienojumu īpašībām un sintēzes metodēm, raksturotas darbā izmantotās analīžu metodes. Eksperimentālajā daļā ar cietfāžu sintēzes metodi ieguva vairākus litiju saturošus savienojumus, izmantojot dažādus sintēzes parametrus. Fāžu sastāva un termisko īpašību noteikšanai izmantoj…

LITIJU SATUROŠI SAVIENOJUMISOLID PHASE SYNTHESISCIETFĀŽU SINTĒZEPULVERA RENTGENDIFRAKTOMETRIJA FOTOLUMINISCENCELITHIUM ORTHOSILICATEĶīmija
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Precipitation and Calcination of High-Capacity LiNiO2 Cathode Material for Lithium-Ion Batteries

2020

This article presents the electrochemical results that can be achieved for pure LiNiO2 cathode material prepared with a simple, low-cost, and efficient process. The results clarify the roles of the process parameters, precipitation temperature, and lithiation temperature in the performance of high-quality LiNiO2 cathode material. Ni(OH)2 with a spherical morphology was precipitated at different temperatures and mixed with LiOH to synthesize the LiNiO2 cathode material. The LiNiO2 calcination temperature was optimized to achieve a high initial discharge capacity of 231.7 mAh/g (0.1 C/2.6 V) with a first cycle efficiency of 91.3% and retaining a capacity of 135 mAh/g after 400 cycles. These a…

LNOcathodeMaterials scienceelektroditlitiumioniakutchemistry.chemical_elementlithium-ion battery02 engineering and technology010402 general chemistryElectrochemistrylcsh:Technology01 natural sciencesLithium-ion batteryIonlaw.inventionlcsh:Chemistrylithium nickel oxideCathode materiallawGeneral Materials ScienceCalcinationlcsh:QH301-705.5InstrumentationFluid Flow and Transfer Processeslcsh:TPrecipitation (chemistry)Process Chemistry and TechnologyGeneral Engineeringmateriaalit021001 nanoscience & nanotechnologysähkökemialcsh:QC1-999Cathode0104 chemical sciencesComputer Science Applicationslitiumlcsh:Biology (General)lcsh:QD1-999Chemical engineeringchemistrylcsh:TA1-2040oksiditLithiumnikkelilcsh:Engineering (General). Civil engineering (General)0210 nano-technologylcsh:PhysicsApplied Sciences
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Correlation of aluminum doping and lithiation temperature with electrochemical performance of LiNi1-xAlxO2 cathode material

2022

Abstract This article presents a process for producing LiNi1-xAlxO2 (0 <  ×  < 0.05) cathode material with high capacity and enhanced cycle properties of 145 mAh/g after 600 cycles. The LiNi1-xAlxO2 (0 <  ×  < 0.05) cathode material is prepared by mixing coprecipitated Ni(OH)2 with LiOH and Al(OH)3, followed by lithiation at temperature range of 650–710 °C, after which any residual lithium from lithiation is washed from the particle surfaces. Electrochemical performance was studied within full-cell and half-cell application; in addition, different material characterization methods were carried out to explain structure changes when certain amount of aluminum is introduced in the …

LNOcathodealuminumlitiumioniakutElectrochemistryGeneral Materials Sciencelithium-ion batteryalumiiniElectrical and Electronic EngineeringCondensed Matter Physicslithium-nickel oxideJournal of Solid State Electrochemistry
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Synthesis and X-ray Crystal Structures of (C5HiPr4)Ln(BH4)2(THF)(Ln = Nd and Sm), Versatile Precursors for Polymerization Catalysts

2000

The new half metallocenes [(C5HiPr4)Ln(BH4)2(THF)] [Ln = Sm (1) and Nd (2)], and [(C5HiPr4)U(BH4)3] (3) have been synthesized. The crystal structures of 1 and 2 and of the metallocenes [(C5HiPr4)2Ln(BH4)] [Ln = Sm (4) and Nd (5)] have been determined. The substitution of the BH4 groups of 1 and 2 by a nitrogen-based ligand is possible. In the presence of butyllithium, these complexes show an activity in isoprene and styrene polymerization.

LanthanideChemistryLigandInorganic chemistrychemistry.chemical_elementCrystal structureStyreneInorganic Chemistrychemistry.chemical_compoundCrystallographyPolymerizationButyllithiumBoronIsopreneEuropean Journal of Inorganic Chemistry
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FRACTAL STRUCTURES IN SINGLE CRYSTALS OF FERROELECTRIC LITHIUM NIOBATE GROWN UNDER STRONGLY UNSTABLE CONDITIONS

2009

Atomic force microscopy studies of lithium niobate single crystals containing heterogeneously distributed lanthanide (Gd) admixture and a regular domain structure of 100 nm to 1 μm steps obtained under conditions of severe thermal instability have revealed fractal structures of the size of 10 to 100 nm within regions of the regular domain structures. A super-structure of clustered defects with 1–2 nm steps explaining results of Raman spectra analysis is supposed to exist in the cation sub-lattice and formation of periodic fractal structures of the size of ∼1 nm–100 μm is suggested to take place in lithium niobate single crystals containing lanthanide admixture.

LanthanideMaterials scienceAtomic force microscopyLithium niobateCondensed Matter PhysicsMicrostructureFerroelectricityElectronic Optical and Magnetic Materialssymbols.namesakechemistry.chemical_compoundCrystallographyFractalchemistryControl and Systems EngineeringThermal instabilityChemical physicsMaterials ChemistryCeramics and CompositessymbolsElectrical and Electronic EngineeringRaman spectroscopyIntegrated Ferroelectrics
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MICRO- AND NANO-STRUCTURES IN SINGLE CRYSTALS OF LITHIUM NIOBATE CONTAINING LANTHANIDE ADMIXTURES

2008

ABSTRACT Micro-size domain structures in lithium niobate single crystals containing lanthanide (Gd, Tm, Sm, Lu) admixture, grown under stationary and non-stationary conditions are studied by efficient and flexible Thixomet® image analyser. Regular fractal-type domain structures observed along the three Y-axes of the hexagonal crystallographic set-up are assigned to pinning of the domain walls at defects created under conditions of imbalanced crystallization of the doped melt. Characteristic types of domains have been found analysing the configurations of domains on optical and atomic force microscopic images of surfaces of different crystallographic orientations.

LanthanideMaterials scienceHexagonal crystal systemLithium niobateDopingCondensed Matter PhysicsElectronic Optical and Magnetic Materialslaw.inventionCrystallographychemistry.chemical_compoundchemistryControl and Systems EngineeringlawNano-Materials ChemistryCeramics and CompositesElectrical and Electronic EngineeringCrystallizationIntegrated Ferroelectrics
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Time resolved confocal luminescence investigations on reverse proton exchange Nd : LiNbO3 channel waveguides

2009

In this work we report on the time and spatial resolved fluorescence of Neodymium ions in LiNbO(3) channel waveguides fabricated by Reverse Proton Exchange. The analysis of the fluorescence decay curves obtained with a sub-micrometric resolution has evidenced the presence of a relevant fluorescence quenching inside the channel waveguide. From the comparison between diffusion simulations and the spatial dependence of the (4)F(3/2) fluorescence decay rate we have concluded that the observed fluorescence quenching can be unequivocally related to the presence of H+ ions in the LiNbO(3) lattice. Nevertheless, it turns out that Reverse Proton Exchange guarantees a fluorescence quenching level sig…

Laser materialsQuenching (fluorescence)Materials scienceLITHIUM-NIOBATE CRYSTALSbusiness.industryFísicaPhysics::Opticschemistry.chemical_elementFluorescence correlation spectroscopyLithium niobateNeodymiumFluorescenceLINBO3Atomic and Molecular Physics and OpticsOpticschemistryFluorescence cross-correlation spectroscopyLaser-induced fluorescenceSpectroscopyLuminescencebusiness
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