Search results for "Iridium"

showing 10 items of 296 documents

CCDC 619594: Experimental Crystal Structure Determination

2006

Related Article: R.Corberan, M.Sanau, E.Peris|2006|Organometallics|25|4002|doi:10.1021/om060343r

Iodo-(eta^5^-pentamethyl-cyclopentadienyl)-(1-(diphenylmethyl)-3-methylimidazol-2-ylidenyl)-iridiumSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
researchProduct

Luminescent Ionic Transition-Metal Complexes for Light-Emitting Electrochemical Cells

2012

Higher efficiency in the end-use of energy requires substantial progress in lighting concepts. All the technologies under development are based on solid-state electroluminescent materials and belong to the general area of solid-state lighting (SSL). The two main technologies being developed in SSL are light-emitting diodes (LEDs) and organic light-emitting diodes (OLEDs), but in recent years, light-emitting electrochemical cells (LECs) have emerged as an alternative option. The luminescent materials in LECs are either luminescent polymers together with ionic salts or ionic species, such as ionic transition-metal complexes (iTMCs). Cyclometalated complexes of Ir(III) are by far the most util…

IonsMaterials scienceLuminescenceLightMolecular StructureIonic bondingNanotechnologycopper(I) complexes; electroluminescence; iridium(III) complexes; light-emitting electrochemical cells; ruthenium(II) complexesGeneral ChemistryElectrochemical TechniquesElectroluminescenceCatalysisElectrochemical celllaw.inventionTransition metallawOLEDOrganometallic CompoundsTransition ElementsLuminescenceLight-emitting diodeDiode
researchProduct

Bright Blue Phosphorescence from Cationic Bis-Cyclometalated Iridium(III) Isocyanide Complexes

2012

We report new bis-cyclometalated cationic indium(III) complexes [((CN)-N-boolean AND)(2)Ir(CN-tert-Bu)(2)](CF3SO3) that have tert-butyl isocyanides as neutral auxiliary ligands and 2-phenylpyridine or 2-(4'-fluoropheny1)-R-pyridines (where R is 4-methoxy, 4-tert-butyl, or 5-trifluoromethyl) as (CN)-N-boolean AND ligands. The complexes are white or pale yellow solids that show irreversible reduction and oxidation processes and have a large electrochemical gap of 3.58-3.83 V. They emit blue or bluegreen phosphorescence in liquid/solid solutions from a cyclometalating-ligand-centered excited state. Their emission spectra show vibronic structure with the highest-energy luminescence peak at 440-…

Ir(Iii) ComplexesIsocyanideCationic polymerizationchemistry.chemical_elementEmitting Electrochemical-CellsExcited-State PropertiesElectroluminescent DevicesPhotochemistryAncillary LigandsInorganic Chemistrychemistry.chemical_compoundchemistryExcited stateEfficient BlueIii ComplexesMetal-ComplexesEmission spectrumIridiumPhysical and Theoretical ChemistryPhosphorescenceLuminescenceTurn-On TimesPhotophysical PropertiesSolid solutionInorganic Chemistry
researchProduct

Molecular organization of a water-insoluble iridium(III) complex in mixed monolayers.

2007

Abstract In this work, organized mixed monolayers containing a cationic water-insoluble iridium(III) complex, Ir-dye, [Ir(ppy)2(tmphen)]PF6, (tmphen = 3,4,7,8-tetramethyl-1,10-phenanthroline, and ppy = 2-phenylpyridine), and an anionic lipid matrix, DMPA, dimyristoyl-phosphatidic acid, with different molar proportions, were formed by the co-spreading method at the air–water interface. The presence of the dye at the interface, as well as the molecular organization of the mixed films, is deduced from surface techniques such as π – A isotherms, Brewster angle microscopy (BAM) and reflection spectroscopy. The results obtained remark the formation of an equimolar mixed film, Ir-dye/DMPA = 1:1. B…

LangmuirBrewster's angleChemistryCationic polymerizationAnalytical chemistryInfrared spectroscopychemistry.chemical_elementSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsBiomaterialssymbols.namesakeCrystallographyColloid and Surface ChemistryTransition metalMonolayersymbolsIridiumFourier transform infrared spectroscopyJournal of colloid and interface science
researchProduct

Anionic Cyclometalated Iridium(III) Complexes with a Bis-Tetrazolate Ancillary Ligand for Light-Emitting Electrochemical Cells

2017

none 10 si A series of monoanionic Ir(III) complexes (2-4) of general formula [Ir(C^N)2(b-trz)](TBA) are presented, where C^N indicates three different cyclometallating ligands (Hppy = 2-phenylpyridine; Hdfppy = 2-(2,4-difluoro-phenyl)pyridine; Hpqu = 2-methyl-3-phenylquinoxaline), b-trz is a bis-tetrazolate anionic N^N chelator (H2b-trz = di(1H-tetrazol-5-yl)methane), and TBA = tetrabutylammonium. 2-4 are prepared in good yields by means of the reaction of the suitable b-trz bidentate ligand with the desired iridium(III) precursor. The chelating nature of the ancillary ligand, thanks to an optimized structure and geometry, improves the stability of the complexes, which have been fully char…

Ligand field theoryLuminescenceoptoelectronicsChemistryLigandLECCationic polymerizationQuantum yieldchemistry.chemical_element02 engineering and technologyIridium010402 general chemistry021001 nanoscience & nanotechnologyPhotochemistry01 natural sciences0104 chemical sciencesInorganic Chemistrychemistry.chemical_compoundPyridinePhysical and Theoretical Chemistry; Inorganic ChemistryDensity functional theoryIridiumPhysical and Theoretical Chemistry0210 nano-technologyHOMO/LUMO
researchProduct

Molecular Engineering of Iridium Blue Emitters Using Aryl N‐Heterocyclic Carbene Ligands

2016

The synthesis of a new series of neutral bis[2-(2,4-difluorophen-2-yl)pyridine][1-(2-aryl)-3-methylimidazol-2-ylidene]iridium(III) complexes is reported. Each complex has been characterized by NMR spectroscopy, UV/Vis spectrophotometry, and cyclic voltammetry, and the photophysical properties examined in depth. Furthermore, two of the complexes have been characterized by single-crystal X-ray diffraction analysis. By systematically modifying the cyclometalating aryl group on the N-heterocyclic carbene (NHC) ligand from 2,4-dimethoxyphenyl to 6-methoxy-2-methyl-3-pyridyl, the energy levels of the Ir complexes were modified to produce new blue emitters with increased HOMO and triplet-state ene…

LigandArylchemistry.chemical_element02 engineering and technologyNuclear magnetic resonance spectroscopy010402 general chemistry021001 nanoscience & nanotechnologyPhotochemistry01 natural sciences0104 chemical sciencesInorganic Chemistrychemistry.chemical_compoundchemistryPyridineOLEDIridiumCyclic voltammetry0210 nano-technologyCarbeneEuropean Journal of Inorganic Chemistry
researchProduct

Carbene complexes of rhodium and iridium from tripodal N-heterocyclic carbene ligands: synthesis and catalytic properties.

2004

Two tripodal trisimidazolium ligand precursors have been tested in the synthesis of new N-heterocyclic carbene rhodium and iridium complexes. [Tris(3-methylbenzimidazolium-1-yl)]methane sulfate gave products with coordination of the decomposed precursor. [1,1,1-Tris(3-butylimidazolium-1-yl)methyl]ethane trichloride (TIMEH(3)(Bu)) coordinated to the metal in a chelate and bridged-chelate form, depending on the reaction conditions. The crystal structures of two of the products are described. The compounds resulting from the coordination with TIME(Bu) were tested in the catalytic hydrosilylation of terminal alkynes.

LigandHydrosilylationTransition metal carbene complexchemistry.chemical_elementCrystal structureMedicinal chemistryRhodiumCatalysisInorganic Chemistrychemistry.chemical_compoundchemistryOrganic chemistryIridiumPhysical and Theoretical ChemistryCarbeneInorganic chemistry
researchProduct

Synthesis of new orthometallated iridium(III) compounds by chemical and electrochemical methods

1987

Abstract Replacement of one phosphine ligand in IrCl 3 (η 2 -PCBr)(η 1 -PCBr) ( 1 ) (PCBr = P( o -BrC 6 F 4 )Ph 2 ), by various P-donor ligands has given compounds of stoichiometry IrCl 3 (η 2 -PCBr)L ( 3 : L = PMePh 2 ; 4 : L = P( p -MeC 6 H 4 ) 3 ; 5 : L = P(OMe) 3 , 6 : L = P(OPh) 3 ). All of these show two irreversible reduction peaks in the range −1.1, −1.3 and ca. −2.0 V. The electrochemical reduction of compound 1 at −1.5 V (at 0°C) leads to a very reactive iridium(I) species, probably IrCl(PCBr) 2 , which undergoes intramolecular orthometallation at room temperature. Three compounds are obtained as the results of this chemical conversion: IrBr 2 (PC)(PCBr) ( 7 ), IrCl 2 (PC)(PCBr) (…

LigandStereochemistryOrganic Chemistrychemistry.chemical_elementElectrochemistryBiochemistryMedicinal chemistryRhodiumInorganic Chemistrychemistry.chemical_compoundchemistryIntramolecular forceChemical conversionMaterials ChemistryIridiumPhysical and Theoretical ChemistryStoichiometryPhosphineJournal of Organometallic Chemistry
researchProduct

Highly Stable Red-Light-Emitting Electrochemical Cells

2017

The synthesis and characterization of a series of new cyclometalated iridium(III) complexes [Ir(ppy) 2 (N ∧ N)][PF 6 ] in which Hppy = 2-phenylpyridine and N ∧ N is (pyridin-2-yl)benzo[ d ]thiazole ( L1 ), 2-(4-( tert -butyl)pyridin-2-yl)benzo[ d ]thiazole ( L2 ), 2-(6-phenylpyridin-2-yl)benzo[ d ]thiazole ( L3 ), 2-(4-( tert -butyl)-6-phenylpyridin-2-yl)benzo[ d ]thiazole ( L4 ), 2,6-bis(benzo[ d ]thiazol-2-yl)pyridine ( L5 ), 2-(pyridin-2-yl)benzo[ d ]oxazole ( L6 ), or 2,2′-dibenzo[ d ]thiazole ( L7 ) are reported. The single crystal structures of [Ir(ppy) 2 ( L1 )][PF 6 ]·1.5CH 2 Cl 2 , [Ir(ppy) 2 ( L6 )][PF 6 ]·CH 2 Cl 2 , and [Ir(ppy) 2 ( L7 )][PF 6 ] have been determined. The new com…

LigandStereochemistrychemistry.chemical_element02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesBiochemistryMedicinal chemistryCatalysis0104 chemical sciencesElectrochemical cellchemistry.chemical_compoundColloid and Surface ChemistrychemistryPyridineRed lightIridium0210 nano-technologyThiazoleSingle crystalOxazoleJournal of the American Chemical Society
researchProduct

An Ester-Substituted Iridium Complex for Efficient Vacuum-Processed Organic Light-Emitting Diodes

2009

An orange-red-emitting iridium complex (N958) was prepared, and its photophysical and device-based characteristics were investigated. Despite N958 displaying quite poor photophysical properties in solution (acetonitrile), organic light-emitting diode (OLED) devices based on the complex exhibit an efficiency close to 10%.

LuminescenceMaterials scienceLightGeneral Chemical Engineeringchemistry.chemical_elementEstersIridiumPhotochemistryEnergy conversionOrganic light-emitting diodesAbsorptionchemistry.chemical_compoundPhotophysicsGeneral EnergychemistryOrganometallic CompoundsOLEDEnvironmental ChemistryEnergy transformationGeneral Materials ScienceIridiumAcetonitrileElectrodesDiodeChemSusChem
researchProduct