Search results for "Pyridine ligand"

showing 6 items of 16 documents

Synthesis and application of new iminopyridine ligands in the enantioselective palladium-catalyzed allylic alkylation

2014

A variety of iminopyridines were obtained by condensation of chiral amines with pyridine-2-carboxaldehyde and quinoline-8-carbaldehyde, or of aminoalkylpyridine derivatives with chiral ketones. These ligands were assessed in the enantioselective palladium catalyzed allylic substitution of 1,3-diphenylprop-2-enyl acetate with dimethyl malonate affording the product dimethyl 1,3-diphenylprop-2-enylmalonate in good yields and moderate enantioselectivities (up to 62% ee). Catalytic activity and enantioselectivity were found to be highly dependent upon the steric properties of the ligands. The best enantioselectivity (62% ee) was obtained by an iminopyridine based on a camphane skeleton. © 2014 …

Steric effectsAllylic rearrangementChemistryProcess Chemistry and TechnologyIminopyridine ligandsEnantioselective synthesischemistry.chemical_elementQuímicaDimethyl malonateMedicinal chemistryAllylic substitutionPalladium catalysisCatalysisCatalysischemistry.chemical_compoundTsuji–Trost reactionOrganic chemistryEnantioselective catalysisPhysical and Theoretical ChemistryPalladium
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Isomer Distribution and Interconversion in Cationic Allylpalladium(II) Complexes with 2-(Iminomethyl)pyridine Ligands

1997

The complexes [Pd(η3-allyl)(N-N‘)]ClO4 [allyl = 2-butenyl or 3-methyl-2-butenyl, N-N‘ = C5H3(6-R)N-2-CHNR‘ (R = H, R‘ = Me, CMe3, C6H4OMe-4; R = Me, R‘ = C6H4OMe-4) and C5H4N-2-CH2NMe2] are present in solution with different isomers, the structures of which may be assigned by an 1H NMR criterion based on chemical shift changes of the pyridine H(6) and/or of the allylic methyl protons, as confirmed also by 2D 1H NMR spectra. The isomer distribution depends mainly on the steric requirements of both the allyl and N-N‘ ligands:  for [Pd(η3-3-methyl-2-butenyl)(N-N‘)]ClO4 the predominant isomer (ca. 100%) has a structure with the allylic methyl groups cis to the coordinated pyridine nitrogen when…

Steric effectsAllylic rearrangementChlorinated solventsLigandStereochemistryOrganic ChemistryCationic polymerizationPyridine ligandInorganic Chemistrychemistry.chemical_compoundchemistryPyridineProton NMRPhysical and Theoretical ChemistryOrganometallics
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Distinct photodynamics of κ-N and κ-C pseudoisomeric iron(ii) complexes

2021

Two closely related FeII complexes with 2,6-bis(1-ethyl-1H-1,2,3-triazol-4yl)pyridine and 2,6-bis(1,2,3-triazol-5-ylidene)pyridine ligands are presented to gain new insights into the photophysics of bis(tridentate) iron(II) complexes. The [Fe(N^N^N)2]2+ pseudoisomer sensitizes singlet oxygen through a MC state with nanosecond lifetime after MLCT excitation, while the bis(tridentate) [Fe(C^N^C)2]2+ pseudoisomer possesses a similar 3MLCT lifetime as the tris(bidentate) [Fe(C^C)2(N^N)]2+ complexes with four mesoionic carbenes. Financial support from the Deutsche Forschungsge-meinschaft [DFG, Priority Program SPP 2102] "Light-controlled reactivity of metal complexes" (BA 4467/7-1, LO 714/11-1, …

TrisDenticitysynthesisPyridinepyridine derivativecarbenoidIron compoundsCatalysisexperimental studychemistry.chemical_compoundPyridineMaterials Chemistryphysical chemistrycontrolled studyChemistrySinglet oxygenPyridine ligandsSinglet oxygenMetals and AlloysMesoionicGeneral ChemistryNanosecondPyridine ligandSurfaces Coatings and FilmsElectronic Optical and Magnetic Materialsunclassified drugCrystallographyPhotophysicsiron complexisomerCeramics and CompositesCarbeneschemical structurephotodynamicsphysicsExcitationchemical parameters
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Ruthenium(II) carbonyl compounds with the 4′-chloro-2,2′:6′,2′′-terpyridine ligand

2017

The RuII atoms in the crystal structures of two new potential catalyst precursors, [Ru(Tpy-Cl)(CO)2Cl][Ru(CO)3Cl3] and [Ru(Tpy-Cl)(CO)2Cl2] (Tpy-Cl = 4′-chloro 2,2′:6′,2′′-terpyridine-κ3 N), exhibit distorted octa­hedral coordination spheres.

crystal structureCoordination spherechemistry.chemical_elementCrystal structurecarbonyl ligand010402 general chemistry01 natural sciencesResearch Communicationslcsh:ChemistryMetalchemistry.chemical_compoundAtomGeneral Materials Sciencerutheniumta116010405 organic chemistryLigandGeneral Chemistryterpyridine ligandCondensed Matter Physics0104 chemical sciences3. Good healthRutheniumCrystallographylcsh:QD1-999chemistryvisual_artvisual_art.visual_art_mediumTerpyridineActa Crystallographica Section E Crystallographic Communications
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Crystal structure of chlorido(2-{[2-(4-chlorophenyl)hydrazin-1-ylidene-κN1](phenyl)methyl}pyridine-κN)(η5-pentamethylcyclopentadienyl)iridium(III) te…

2015

The title compound, [Ir(η5-C5Me5)Cl(C18H14ClN3)]B(C6H5)4, is chiral at the metal center and crystallizes as a racemate. In the cation, the hydrazinylidenepyridine ligand isN,N-coordinated through theN-pyridyl andN-hydrazinylidene groups forming a five-membered metallacycle. An intramolecular C—H...Cl hydrogen bond is observed. In the crystal, centrosymmetrically-related cations are connected by C—Cl...π interactions, forming a dimeric structure. The crystal packing is further stabilized by weak interionic C—H...π interactions.

crystal structurechemistry.chemical_elementNanotechnologyCrystal structureC—H⋯π inter­actionsintramolecular C—H...Cl hydrogen bondMedicinal chemistryhydrazinyl­idene­pyridine ligandpenta­methyl­cyclo­penta­dien­ylMetallcsh:Chemistrychemistry.chemical_compoundC—H...π interactionsPyridineGeneral Materials SciencepentamethylcyclopentadienylIridiumC—Cl...π interactionsbiologyLigandHydrogen bondintra­molecular C—H⋯Cl hydrogen bondiridium(III) complexGeneral ChemistryMetallacycleCondensed Matter Physicsbiology.organism_classificationData Reportshydrazinylidenepyridine ligandchemistrylcsh:QD1-999visual_artC—Cl⋯π inter­actionsvisual_art.visual_art_mediumTetraActa Crystallographica Section E: Crystallographic Communications
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Transition metal ion induced hydrogelation by amino-terpyridine ligands

2014

Hydrogelation behavior of two amino-terpyridine ligands in the presence of divalent metal ions in water was studied in detail. The effect of ligand structure and different counter anions on the gel morphologies was also explored. peerReviewed

hydrogelationamino-terpyridine ligandstransition metal ion
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