Search results for "Green Chemistry"

showing 10 items of 159 documents

Electrochemical synthesis of carbazoles by dehydrogenative coupling reaction

2020

Abstract A constant current protocol, employing undivided cells, a remarkably low supporting electrolyte concentration, inexpensive electrode materials, and a straightforward precursor synthesis enabling a novel access to N‐protected carbazoles by anodic N,C bond formation using directly generated amidyl radicals is reported. Scalability of the reaction is demonstrated and an easy deblocking of the benzoyl protecting group is presented.

Green chemistry540 Chemistry and allied sciencesDeblocking filterSupporting electrolyteRadicalSustainable Chemistry010402 general chemistryElectrochemistry01 natural sciencesCatalysisCoupling reactionNC couplingProtecting groupgreen chemistry010405 organic chemistryChemistryCommunicationOrganic Chemistryheterocyclic chemistryGeneral ChemistryCombinatorial chemistryCommunications0104 chemical sciencesAnodecarbazoleselectrochemistry540 Chemie
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Selective and Scalable Electrosynthesis of 2H-2-(Aryl)-benzo[d]-1,2,3-triazoles and Their N-Oxides by Using Leaded Bronze Cathodes.

2020

Abstract Electrosynthesis of 2H‐2‐(aryl)benzo[d]‐1,2,3‐triazoles and their N‐oxides from 2‐nitroazobenzene derivatives is reported. The electrolysis is conducted in a very simple undivided cell under constant current conditions with a leaded bronze cathode and a glassy carbon anode. The product distribution between 2H‐2‐(aryl)benzo[d]‐1,2,3‐triazoles and their N‐oxides can be guided by simply controlling the current density and the amount of the charge applied. The reaction tolerates several sensitive functional groups in reductive electrochemistry. The usefulness and the applicability of the synthetic method is demonstrated by a formal synthesis of an antiviral compound.

Green chemistry540 Chemistry and allied sciencesazo compoundsreductionGlassy carbon010402 general chemistryElectrosynthesisElectrochemistry01 natural sciencesCatalysislaw.inventionchemistry.chemical_compoundlawsustainable chemistryElectrolysis010405 organic chemistryChemistryArylCommunicationOrganic ChemistryGeneral ChemistryCombinatorial chemistryCathodeCommunications0104 chemical sciencesAnodeElectrochemistry | Hot Paperelectrochemistry540 Chemienitrogen heterocyclesChemistry (Weinheim an der Bergstrasse, Germany)
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Straightforward Electrochemical Sulfonylation of Arenes and Aniline Derivatives using Sodium Sulfinates

2019

Green chemistry540 Chemistry and allied scienceschemistry.chemical_compoundAnilineChemistry540 ChemieSodiumElectrochemistrychemistry.chemical_elementOrganic chemistryElectrochemistryCatalysisChemElectroChem
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Developments in the dehydrogenative electrochemical synthesis of 3,3′,5,5′-tetramethyl-2,2′-biphenol

2021

Abstract The symmetric biphenol 3,3′,5,5′‐tetramethyl‐2,2′‐biphenol is a well‐known ligand building block and is used in transition‐metal catalysis. In the literature, there are several synthetic routes for the preparation of this exceptional molecule. Herein, the focus is on the sustainable electrochemical synthesis of 3,3′,5,5′‐tetramethyl‐2,2′‐biphenol. A brief overview of the developmental history of this inconspicuous molecule, which is of great interest for technical applications, but has many challenges for its synthesis, is provided. The electro‐organic method is a powerful, sustainable, and efficient alternative to conventional synthesis to obtain this symmetric biphenol up to the …

Green chemistry540 Chemistry and allied sciencespolycycles010405 organic chemistryChemistryoxidationOrganic ChemistryC−C couplingMinireviewsGeneral Chemistry010402 general chemistryElectrochemistry01 natural sciencesCombinatorial chemistryCatalysis0104 chemical sciencesC c couplingelectrochemistry540 Chemiesustainable chemistryMinireviewC−C Coupling | Reviews Showcase
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New heterogeneous catalysts for greener routes in the synthesis of fine chemicals

2007

Abstract New strong Lewis acid SnTf-MCM-41 and SnTf-UVM-7 catalysts with unimodal and bimodal pore systems were prepared in a two-step synthesis in which the triflic acid (Tf) was incorporated to previously synthesized mesoporous tin-containing silicas. The Sn incorporation inside the pore walls was carried out through the Atrane method. The SnTf-UVM-7 catalysts were prepared by aggregating nanometric mesoporous particles defining a hierarchic textural-type additional pore system. Following these procedures, catalysts with different Si/Sn ratios—21.8 to 50.8 for SnTf-MCM-41 and 18.4 for SnTf-UVM-7—were prepared. These new materials were tested in the acylation of aromatic sulfonamides using…

Green chemistryAcylationchemistry.chemical_compoundAtranechemistryOrganic chemistryLewis acids and basesPhysical and Theoretical ChemistryMesoporous materialHeterogeneous catalysisTriflic acidCatalysisCatalysisJournal of Catalysis
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Electrochemical Allylic Oxidation of Olefins: Sustainable and Safe.

2016

The power you're supplying: With the application of an optimized electrochemical approach, the allylic oxidation of olefins, which is an important C-H activation process that provides access to enones, becomes a sustainable, versatile, and potent key reaction for organic synthesis.

Green chemistryAllylic rearrangement010405 organic chemistryGeneral Chemistry010402 general chemistryElectrosynthesisElectrochemistry01 natural sciencesCatalysis0104 chemical scienceschemistry.chemical_compoundchemistryOrganic chemistryOrganic synthesisAngewandte Chemie (International ed. in English)
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Whole-Cell Biocatalysis in Seawater: New Halotolerant Yeast Strains for the Regio- and Stereoselectivity Reduction of 1-Phenylpropane-1,2-Dione in Sa…

2020

The application of green chemistry concepts in catalysis has considerably increased in recent years, and the interest in using sustainable solvents in the chemical industry is growing. One of the recent proposals to fall in line with this is to employ seawater as a solvent in biocatalytic processes. This involves selecting halotolerant strains capable of carrying out chemical conversions in the presence of the salt concentrations found in this solution. Recent studies by our group have revealed the interest in using strains belonging to Debaryomyces and Schwanniomyces for catalytic processes run in this medium. In the present work, we select other yeasts based on their halotolerance to wide…

Green chemistryAquatic OrganismsSalinitySaccharomyces cerevisiae010402 general chemistry01 natural sciencesBiochemistryCatalysisKluyveromycesChalconesKluyveromyces marxianusOrganic chemistryHumansSeawaterEnantiomeric excessMolecular Biologybiology010405 organic chemistryChemistryOrganic ChemistryDebaryomycesGreen Chemistry TechnologyStereoisomerismSalt Tolerancebiology.organism_classification0104 chemical sciencesSolventBiocatalysisHalotoleranceBiocatalysisMolecular MedicineFatty AlcoholsChembiochem : a European journal of chemical biology
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Sustainable Approach to Waste-Minimized Sonogashira Cross-Coupling Reaction Based on Recoverable/Reusable Heterogeneous Catalytic/Base System and Ace…

2016

In this contribution, we present a chemically efficient and sustainable protocol for the palladium-catalyzed copper-free Sonogashira cross-coupling reaction, based on the use of a heterogeneous catalytic system. This consists in the combination of a palladium catalyst on highly cross-linked thiazolidine network on silica and a polystyrene-supported base. The solid catalyst/base system acts as a palladium scavenger avoiding leaching of the metal and consequent product contamination. The reaction can be conducted in safe and easily recoverable acetonitrile/water azeotrope as reaction medium. This proved to be an efficient greener alternative to the classic toxic aprotic media commonly used in…

Green chemistryAzeotrope media; Green chemistry; Heterogeneous catalysis; Sonogashira reaction; Waste minimization; Chemistry (all); Environmental Chemistry; Chemical Engineering (all); Renewable Energy Sustainability and the EnvironmentGeneral Chemical EngineeringWaste minimizationchemistry.chemical_elementSonogashira coupling010402 general chemistryHeterogeneous catalysis01 natural sciencesCoupling reactionCatalysisHeterogeneous catalysichemistry.chemical_compoundEnvironmental ChemistryOrganic chemistryChemical Engineering (all)Renewable EnergyAcetonitrileHeterogeneous catalysisSustainability and the Environment010405 organic chemistryRenewable Energy Sustainability and the EnvironmentChemistry (all)Settore CHIM/06 - Chimica OrganicaGeneral ChemistryAzeotrope mediaCombinatorial chemistry0104 chemical scienceschemistryGreen chemistryLeaching (metallurgy)Sonogashira reactionPalladiumACS Sustainable Chemistry and Engineering
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Efficient microwave-assisted synthesis of glycerol monodecanoate

2017

International audience; Solvent-free microwave-assisted synthesis was carried out to prepare 2,3-dihydroxypropyl decanoate, by esterification of decanoic acid in the presence of two distinct glycerol derivatives, glycidol, and glycerol carbonate, respectively. The process described is based on microwaves heating source with electrical power in the range of 200–400 W, involving stoichiometric proportions of decanoic acid and glycerol derivatives, and using catalytic amounts of TBAI used as organocatalyst. Conversion and selectivity rates of esterification reactions were monitored by 1H and 13C{1H} NMR spectroscopy. The predominantly formed ester, 2,3-dihydroxypropyl decanoate was fully chara…

Green chemistryBio-based building-blocksGlycerol derivatives02 engineering and technology010402 general chemistry01 natural sciences[ CHIM ] Chemical SciencesIndustrial and Manufacturing EngineeringCatalysischemistry.chemical_compoundGlycerolOrganic chemistry[CHIM]Chemical Sciences1-MonoacylglycerolComputingMilieux_MISCELLANEOUSGlycidolGeneral ChemistryDecanoic acidNuclear magnetic resonance spectroscopy021001 nanoscience & nanotechnology0104 chemical sciencesMicrowave-assisted organic chemistrychemistryGreen chemistry13. Climate action0210 nano-technologySelectivityStoichiometryFood ScienceBiotechnology
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Xylochemistry--Making Natural Products Entirely from Wood.

2015

The first total synthesis of the dimeric berberine alkaloid ilicifoline (ilicifoline B) is reported. Its carbon skeleton is constructed from ferulic acid, veratrole, and methanol. The synthesis reported herein employs starting materials solely derived from wood. The natural product is thus constructed entirely from renewable resources. The same strategy is applied to a formal total synthesis of morphinan alkaloids. The use of wood-derived building blocks (xylochemicals) instead of the conventional petrochemicals represents a sustainable alternative to classical synthetic approaches.

Green chemistryBiological ProductsNatural productMolecular StructureBerberine AlkaloidsTotal synthesisGeneral ChemistryWoodCatalysisFerulic acidchemistry.chemical_compoundPetrochemicalchemistryOrganic chemistryMethanolBerberine AlkaloidsRenewable resourceAngewandte Chemie (International ed. in English)
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