Search results for "Organische Chemie"

showing 10 items of 24 documents

Use of Ambient Ionization High-Resolution Mass Spectrometry for the Kinetic Analysis of Organic Surface Reactions

2016

In contrast to homogeneous systems, studying the kinetics of organic reactions on solid surfaces remains a difficult task due to the limited availability of appropriate analysis techniques that are general, high-throughput, and capable of offering quantitative, structural surface information. Here, we demonstrate how direct analysis in real time mass spectrometry (DART-MS) complies with above considerations and can be used for determining interfacial kinetic parameters. The presented approach is based on the use of a MS tag that - in principle - allows application to other reactions. To show the potential of DART-MS, we selected the widely applied strain-promoted alkyne-azide cycloaddition …

Kinetic analysisKineticsAnalytical chemistry010402 general chemistryKinetic energyMass spectrometry01 natural sciencesReaccions químiquesElectrochemistryLife ScienceGeneral Materials ScienceSpectroscopyAmbient ionizationVLAG010405 organic chemistryChemistryOrganic ChemistrySurfaces and InterfacesCondensed Matter PhysicsDART ion sourceOrganische ChemieCycloaddition0104 chemical sciencesOrganic reactionChemical physicsQuímica orgànicaLangmuir
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Rapid and Complete Surface Modification with Strain-Promoted Oxidation-Controlled Cyclooctyne-1,2-Quinone Cycloaddition (SPOCQ)

2017

Abstract Strain‐promoted oxidation‐controlled cyclooctyne‐1,2‐quinone cycloaddition (SPOCQ) between functionalized bicyclo[6.1.0]non‐4‐yne (BCN) and surface‐bound quinones revealed an unprecedented 100 % conjugation efficiency. In addition, monitoring by direct analysis in real time mass spectrometry (DART‐MS) revealed the underlying kinetics and activation parameters of this immobilization process in dependence on its microenvironment.

Kinetics02 engineering and technologyMetal-free click chemistry010402 general chemistryMass spectrometry01 natural sciencesCatalysisQuímica de superfíciesVLAGMass spectrometryStrain (chemistry)Bicyclic moleculeChemistryCommunicationOrganic ChemistryGeneral MedicineGeneral ChemistryCyclooctynes021001 nanoscience & nanotechnologyOrganische ChemieSurface chemistryCombinatorial chemistryCommunicationsCycloaddition0104 chemical sciencesQuinoneKineticsSurface modification0210 nano-technologyQuímica orgànicaAngewandte Chemie International Edition
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Strain-Promoted Cycloaddition of Cyclopropenes with o-Quinones : A Rapid Click Reaction

2018

Abstract Novel click reactions are of continued interest in fields as diverse as bio‐conjugation, polymer science and surface chemistry. Qualification as a proper “click” reaction requires stringent criteria, including fast kinetics and high conversion, to be met. Herein, we report a novel strain‐promoted cycloaddition between cyclopropenes and o‐quinones in solution and on a surface. We demonstrate the “click character” of the reaction in solution and on surfaces for both monolayer and polymer brush functionalization.

KineticsClick Chemistry | Hot Paper010402 general chemistryPolymer brushO quinones01 natural sciencesCatalysisReaccions químiquesMonolayerotorhinolaryngologic diseasesMetal-free click reactionsVLAGchemistry.chemical_classificationMonolayersMass spectrometry010405 organic chemistryChemistryCommunicationOrganic ChemistryGeneral MedicineGeneral ChemistryPolymerCombinatorial chemistryOrganische ChemieCycloadditionCommunications0104 chemical sciencesKineticsClick chemistrySurface modificationPolymer brushesQuímica orgànicahuman activitiesAngewandte Chemie - International Edition
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Characterization of the laccase-mediated oligomerization of 4-hydroxybenzoic acid

2016

Modifying inert poly(ethersulfone) membranes using laccase has proven to be an environmentally benign and easily applicable process to alter the membrane's surface properties. By this method phenolic acid monomers such as 4-hydroxybenzoic acid are grafted from the membrane surface to make it anti-fouling. In order to enhance the anti-fouling capabilities even further it is important to study the molecular details of this reaction. However, the nature of the products of laccase modification, either on a surface or in solution, has been studied only poorly. In this paper we report the formation of C3–C3′, C3–O and C1–C3′ linked dimers as the first products of the solution-phase laccase-mediat…

Laccase010405 organic chemistryGeneral Chemical EngineeringDimerOrganic ChemistryQuímica organometàl·licaGeneral Chemistry010402 general chemistryReactivitat (Química)01 natural sciencesOrganische Chemie0104 chemical scienceschemistry.chemical_compoundMonomerMembrane4-Hydroxybenzoic acidchemistryPolymerizationOrganic chemistryLigninLife SciencePhenolsVLAGRSC Advances : An international journal to further the chemical sciences
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Picomolar inhibition of cholera toxin by a pentavalent ganglioside GM1os-calix[5]arene

2013

Cholera toxin (CT), the causative agent of cholera, displays a pentavalent binding domain that targets the oligosaccharide of ganglioside GM1 (GM1os) on the periphery of human abdominal epithelial cells. Here, we report the first GM1os-based CT inhibitor that matches the valency of the CT binding domain (CTB). This pentavalent inhibitor contains five GM1os moieties linked to a calix[5]arene scaffold. When evaluated by an inhibition assay, it achieved a picomolar inhibition potency (IC50 = 450 pM) for CTB. This represents a significant multivalency effect, with a relative inhibitory potency of 100000 compared to a monovalent GM1os derivative, making GM1os-calix[5]arene one of the most potent…

Models MolecularCholera ToxinbindingStereochemistrydesignCalix[5]areneEpithelial cellsG(M1) GangliosideHeat-labile enterotoxinmedicine.disease_causeligandBiochemistrycrystalMultivalency effectsCholeraCausative agentsmedicinePotencyHumansoligosaccharidePhysical and Theoretical ChemistryIC50Vibrio choleraeheat-labile enterotoxinVLAGchemistry.chemical_classificationgm1 mimicsGangliosideInhibition assaysChemistryCholera toxinOrganic ChemistryOligosaccharideBinding domainLigand (biochemistry)ValenciesOrganische ChemiehexamethylenetetramineChemistryPositive ionsaffinityAntitoxinsCalixarenesrecognitionBinding domain
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Neorganiskās ķīmijas kurss, 2. sējums: Speciālā daļa

1924

Pielikums: Elementu spektru tabele

Neorganiskā ķīmijaĶīmija neorganiskāAnorganische Chemie:NATURAL SCIENCES::Chemistry::Inorganic chemistry [Research Subject Categories]
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Neorganiskās ķīmijas kurss, 1. sējums: Vispārīgā daļa

1922

Neorganiskā ķīmijaĶīmija neorganiskāAnorganische Chemie:NATURAL SCIENCES::Chemistry::Inorganic chemistry [Research Subject Categories]
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Approach Matters : The Kinetics of Interfacial Inverse-Electron Demand Diels-Alder Reactions

2017

Rapid and quantitative click functionalization of surfaces remains an interesting challenge in surface chemistry. In this regard, inverse electron demand Diels Alder (IEDDA) reactions represent a promising metal-free candidate. Herein, we reveal quantitative surface functionalization within 15 min. Furthermore, we report the comprehensive effects of substrate stereochemistry, surrounding microenvironment and substrate order on the reaction kinetics as obtained via a combination of XPS and surface-bound mass spectrometry (DART-MS).

Reaction ratesKinetics010402 general chemistry01 natural sciencesCatalysisReaccions químiquesReaction rateChemical kineticsComputational chemistryOrganic chemistryInverse electron-demand Diels–Alder reactionDiels-Alder reactionCycloadditionDiels–Alder reactionVLAGMass spectrometry010405 organic chemistryChemistryCommunicationOrganic ChemistrySubstrate (chemistry)General ChemistryOrganische ChemieCommunicationsCycloaddition0104 chemical sciencesDiels–Alder reactionSurface modificationOrganic surface chemistryQuímica orgànicaChemistry-A European Journal
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Organic Monolayers by B(C6F5)3-Catalyzed Siloxanation of Oxidized Silicon Surfaces

2017

Inspired by the homogeneous catalyst tris(pentafluorophenyl) borane [B(C6F5)3], which acts as a promotor of Si-H bond activation, we developed and studied a method of modifying silicon oxide surfaces using hydrosilanes with B(C6F5)3 as the catalyst. This dedihydrosiloxanation reaction yields complete surface coverage within 10 min at room temperature. Organic monolayers derived from hydrosilanes with varying carbon chain lengths (C8-C18) were prepared on oxidized Si(111) surfaces, and the thermal and hydrolytic stabilities of the obtained monolayers were investigated in acidic (pH 3) medium, basic (pH 11) medium, phosphate-buffered saline (PBS), and deionized water (neutral conditions) for …

SiliconInorganic chemistrySilici Compostoschemistry.chemical_elementHomogeneous catalysis02 engineering and technologyBorane010402 general chemistry01 natural sciencesQuímica de superfíciesCatalysischemistry.chemical_compoundHydrolysisMonolayerElectrochemistryLife ScienceGeneral Materials ScienceSilicon oxideSpectroscopyVLAGOrganic ChemistrySurfaces and Interfaces021001 nanoscience & nanotechnologyCondensed Matter PhysicsOrganische ChemieSilane0104 chemical scienceschemistry0210 nano-technologyQuímica orgànicaLangmuir
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Dynamic covalent urea bonds and their potential for development of self-healing polymer materials

2019

Self-healing polymer materials have drawn rapidly increasing interest over the last decade, and have been studied and used in an ever-increasing range of applications. Herein, we successfully make the covalent urea bond – a pinnacle of stability due to strong resonance effects – dynamic in nature through mediation of zinc salts. The dynamic covalent character of urea in the presence of zinc ions is confirmed through dissociation reaction experiments and quantum chemical calculations of small-molecule model urea compounds. In line with our experiments, the modelling results suggest that the presence of zinc ions speeds up the reaction of urea dissociation by two orders of magnitude via the f…

Solucions polimèriquesMaterials science02 engineering and technologyDissociation (chemistry)chemistry.chemical_compoundLife ScienceGeneral Materials ScienceSelf-healing materialPolyureaVLAGchemistry.chemical_classificationRenewable Energy Sustainability and the EnvironmentOrganic ChemistryGeneral ChemistryPolymerCiència dels materials021001 nanoscience & nanotechnologyIsocyanateOrganische ChemieMonomerchemistryChemical engineeringCovalent bondSiloxane0210 nano-technologyJournal of Materials Chemistry A
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