Search results for "Ethylamine"

showing 10 items of 230 documents

Microscopic Insights Into the Formation of Methanesulfonic Acid–Methylamine–Ammonia Particles Under Acid-Rich Conditions

2022

Understanding the microscopic mechanisms of new particle formation under acid-rich conditions is of significance in atmospheric science. Using quantum chemistry calculations, we investigated the microscopic formation mechanism of methanesulfonic acid (MSA)–methylamine (MA)–ammonia (NH3) clusters. We focused on the binary (MSA)2n-(MA)n and ternary (MSA)3n-(MA)n-(NH3)n, (n = 1–4) systems which contain more acid than base molecules. We found that the lowest-energy isomers in each system possess considerable thermodynamic and dynamic stabilities. In studied cluster structures, all bases are protonated, and they form stable ion pairs with MSA, which contribute to the charge transfer and the stab…

aerosolitbase ratio [acid]proton transferEcologyammoniakkipienhiukkasetilmakemiahappamuusklusteritnew particle formationrikkiyhdisteetacid-rich conditiontyppiyhdisteetmethanesulfonic acid–methylamine–ammonia particlesEcology Evolution Behavior and SystematicsFrontiers in Ecology and Evolution
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Electrochemical C−H Functionalization of (Hetero)Arenes—Optimized by DoE

2020

Abstract A novel approach towards the activation of different arenes and purines including caffeine and theophylline is presented. The simple, safe and scalable electrochemical synthesis of 1,1,1,3,3,3‐hexafluoroisopropanol (HFIP) aryl ethers was conducted using an easy electrolysis setup with boron‐doped diamond (BDD) electrodes. Good yields up to 59 % were achieved. Triethylamine was used as a base as it forms a highly conductive media with HFIP, making additional supporting electrolytes superfluous. The synthesis was optimized using Design of Experiment (DoE) techniques giving a detailed insight to the significance of the reaction parameters. The mechanism was investigated by cyclic volt…

boron-doped diamond540 Chemistry and allied sciencesanodeElectrolyte010402 general chemistryElectrochemistry01 natural sciencesCatalysislaw.inventionC−H functionalizationchemistry.chemical_compoundlawelectrolysisElectrochemistryTriethylaminecaffeineElectrolysis010405 organic chemistryCommunicationArylOrganic ChemistryGeneral ChemistryCombinatorial chemistryCommunications0104 chemical scienceschemistry540 ChemieElectrodeSurface modificationCyclic voltammetryChemistry – A European Journal
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Reductions of M{N(SiMe3)2}3 (M = V, Cr, Fe): Terminal and Bridging Low-Valent First-Row Transition Metal Hydrido Complexes and “Metallo-Transaminatio…

2021

The reaction of the vanadium(III) tris(silylamide) V{N(SiMe3)2}3 with LiAlH4 in diethyl ether gives the highly unstable mixed-metal polyhydride [V(μ2-H)6[Al{N(SiMe3)2}2]3][Li(OEt2)3] (1), which was structurally characterized. Alternatively, performing the same reaction in the presence of 12-crown-4 affords a rare example of a structurally verified vanadium terminal hydride complex, [VH{N(SiMe3)2}3][Li(12-crown-4)2] (2). The corresponding deuteride 2D was also prepared using LiAlD4. In contrast, no hydride complexes were isolated by reaction of M{N(SiMe3)2}3 (M = Cr, Fe) with LiAlH4 and 12-crown-4. Instead, these reactions afforded the anionic metal(II) complexes [M{N(SiMe3)2}3][Li(12-crown-…

chemistry.chemical_classification010405 organic chemistryHydrideVanadiumchemistry.chemical_elementTrimethylamine010402 general chemistry01 natural sciences0104 chemical sciencesInorganic ChemistryMetalchemistry.chemical_compoundCrystallographychemistryTransition metalvisual_artvisual_art.visual_art_mediumLithiumPhysical and Theoretical ChemistryDiethyl etherCrown etherInorganic Chemistry
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Novel acrylamido monomers with higher hydrophilicity and improved hydrolytic stability: I. Synthetic route and product characterization.

1996

The novel acrylamido monomer reported by our group (N-acryloylaminoethoxyethanol, AAEE; Chiari et al., Electrophoresis 1994, 15, 177-186), found to combine high hydrophilicity with extraordinary resistance to alkaline hydrolysis, has come under closer scrutiny due to unexpected and random autopolymerization while stored as a 1/1 v/v water solution at 4 degrees C (possibly due to a greater oxidability of the ether group). We have additionally found a unique degradation pathway of the monomer, called "1-6 H-transfer", by which the C1 (on the double bond site), by constantly ramming against the C6, next to the ether oxygen (O7, which in fact favors the transfer of the hydrogen atom by C1), pro…

chemistry.chemical_classificationAcrylamidesMagnetic Resonance SpectroscopyDouble bondEsterificationEthanolMolecular StructureReaction stepChemistryMethanolClinical BiochemistryEtherAcryloyl chlorideBiochemistryAnalytical ChemistrySolventAcetoneDioxanesPropanolamineschemistry.chemical_compoundMonomerEthylaminesOrganic chemistryMethanolTriethylamineElectrophoresis
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Base-catalyzed isomerization of 2-isoxazolines enables a two-step enantioselective synthesis of β-hydroxynitriles from enals.

2010

The asymmetric synthesis of β-hydroxynitriles remains a challenge in organic synthesis. Herein we report a convenient synthesis of β-hydroxynitriles from enantiomerically enriched 3-unsubstituted 2-isoxazolines via a base-catalyzed ring-opening reaction that takes place without loss of enantiopurity. In combination with organocatalytic enantioselective synthesis of 3-unsubstituted 2-isoxazolines, the ring-opening enables a short 2-step synthesis of β-hydroxynitriles from α,β-unsaturated aldehydes in high enantiomeric purity.

chemistry.chemical_classificationAldehydesMolecular StructureChemistryOrganic ChemistryEnantioselective synthesisStereoisomerismStereoisomerismIsoxazolesChemical synthesisAldehydeCatalysisCatalysischemistry.chemical_compoundCyclizationNitrilesEthylaminesOrganic chemistryOrganic synthesisEnantiomerIsomerizationThe Journal of organic chemistry
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Palladium-Catalyzed Synthesis of Mono- and Diphosphorylated 1,10-Phenanthrolines

2012

A general protocol for the coupling of mono- and dihalo-1,10-phenanthrolines with diethyl phosphite is reported. This reaction proceeds smoothly in the presence of a Pd(OAc)2/dppf catalytic system and triethylamine as a base.

chemistry.chemical_classificationBase (chemistry)010405 organic chemistryOrganic Chemistrychemistry.chemical_element010402 general chemistry01 natural sciencesMedicinal chemistryCatalysis3. Good health0104 chemical sciencesCatalysischemistry.chemical_compoundchemistry[CHIM]Chemical SciencesTriethylamineComputingMilieux_MISCELLANEOUSPalladiumSynthesis
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Uranyl(VI) complexes of [O,N,O,N′]-type diaminobis(phenolate) ligands: Syntheses, structures and extraction studies

2008

Abstract The syntheses and crystal structures of four new uranyl complexes with [O,N,O,N′]-type ligands are described. The reaction between uranyl nitrate hexahydrate and the phenolic ligand [(N,N-bis(2-hydroxy-3,5-dimethylbenzyl)-N′,N′-dimethylethylenediamine)], H2L1 in a 1:2 molar ratio (M to L), yields a uranyl complex with the formula [UO2(HL1)(NO3)] · CH3CN (1). In the presence of a base (triethylamine, one mole per ligand mole) with the same molar ratio, the uranyl complex [UO2(HL1)2] (2) is formed. The reaction between uranyl nitrate hexahydrate and the ligand [(N,N-bis(2-hydroxy-3,5-di-t-butylbenzyl)-N′,N′-dimethylethylenediamine)], H2L2, yields a uranyl complex with the formula [UO…

chemistry.chemical_classificationBase (chemistry)LigandInorganic chemistryCrystal structureUranylMedicinal chemistryInorganic Chemistrychemistry.chemical_compoundchemistryMaterials ChemistryAmine gas treatingPhysical and Theoretical ChemistrySelectivityTriethylamineDichloromethanePolyhedron
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Uranyl ion complexes with long chain aminoalcoholbis(phenolate) [O,N,O,O′] donor ligands

2007

Abstract The reaction between uranyl nitrate hexahydrate and phenolic ligand precursor [(N,N-bis(2-hydroxy-3,5-dimethylbenzyl)-4-amino-1-butanol) · HCl], H3L1 · HCl, leads to a uranyl complex [UO2(H2L1)2] (1a) and [UO2(H2L1)2] · 2CH3CN (1b). The ligand [(N,N-bis(2-hydroxy-5-tert-butyl-3-methylbenzyl)-4-amino-1-butanol)H3L2 · HCl], H3L2 · HCl, yields a uranyl complex with a formula [UO2(H2L2)2] · CH3CN (2). The ligand [(N,N-bis(2-hydroxy-3,5-dimethylbenzyl)-5-amino-1-pentanol) · HCl], H3L3 · HCl, produces a uranyl complex with a formula [UO2(H2L3)2] · 2CH3CN (3) and the ligand [(N,N-bis(2-hydroxy-5-tert-butyl-3-methylbenzyl)-5-amino-1-pentanol) · HCl], H3L4 · HCl, leads to a uranyl complex w…

chemistry.chemical_classificationBase (chemistry)LigandStereochemistryCrystal structureUranylMedicinal chemistryIonInorganic Chemistrychemistry.chemical_compoundchemistryOctahedronMaterials ChemistryPhysical and Theoretical ChemistryTriethylamineDichloromethanePolyhedron
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Aminoalkylbis(phenolate) [O,N,O] donor ligands for uranyl(VI) ion coordination: Syntheses, structures, and extraction studies

2007

Abstract The syntheses of five new aminoalkylbis(phenolate) ligands (as hydrochlorides) and their uranyl complexes are described. The reaction between uranyl nitrate hexahydrate and phenolic ligand [(N,N-bis(2-hydroxy-5-tert-butyl-3-methylbenzyl)-1-aminopropane) · HCl], H2L1 · HCl, forms a uranyl complex [UO2(HL1)2] · 2CH3CN (1). The ligand [(N,N-bis(2-hydroxy-5-tert-butyl-3-methylbenzyl)-1-aminobutane) · HCl], H2L2 · HCl, forms a uranyl complex with a formula [UO2(HL2)2] · 2CH3CN (2). The ligand [(N,N-bis(2-hydroxy-5-tert-butyl-3-methyl benzyl)-1-aminohexane) · HCl], H2L3 · HCl, yields a uranyl complex with a formula [UO2(HL3)2] · 2CH3CN (3) and the ligand [(N,N-bis(2-hydroxy-5-tert-butyl-…

chemistry.chemical_classificationBase (chemistry)StereochemistryLigandCrystal structureUranylMedicinal chemistryInorganic Chemistrychemistry.chemical_compoundchemistryOctahedronMaterials ChemistryMethanolPhysical and Theoretical ChemistryTriethylamineDichloromethanePolyhedron
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Uranyl(VI) complexes with a diaminobisphenol from eugenol and N-(2-aminoethyl)morpholine: Syntheses, structures and extraction studies

2011

Abstract The syntheses and structural studies of an [O,N,O,N′]-type phenolic ligand [(N’,N’-bis(2-hydroxy-3-methoxy-5-(propen-2-yl)benzyl)-N-(2-aminoethyl)morpholine), (H2L) and two new uranyl complexes of this ligand are described. The reaction between uranyl nitrate hexahydrate and H2L in a 1:2 M ratio (M to H2L) results in a uranyl complex of the formula [UO2(HL)(NO3)(H2O)] (1). In the presence of a base (triethylamine), with the same molar ratio, the uranyl complex [UO2(HL)2]·2CH3CN (2) is formed. The molecular structures H2L, 1 and 2 were verified by X-ray crystallography. Both uranyl complexes are zwitterions with a neutral net charge. A comprehensive NMR-structural analyses of all co…

chemistry.chemical_classificationBase (chemistry)StereochemistryLigandExtraction (chemistry)UranylMedicinal chemistryIonInorganic Chemistrychemistry.chemical_compoundchemistryMorpholineMaterials ChemistryPhysical and Theoretical ChemistryTriethylamineta116DichloromethanePolyhedron
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