Search results for "benzyl alcohol"

showing 10 items of 51 documents

CCDC 1945327: Experimental Crystal Structure Determination

2020

Related Article: Agris Be̅rziņš, Artis Kons, Kristaps Saršu̅ns, Sergey Belyakov, Andris Actiņš|2020|Cryst.Growth Des.|20|5767|doi:10.1021/acs.cgd.0c00331

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters2-chloro-4-nitrobenzoic acid benzyl alcohol solvateExperimental 3D Coordinates
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A highly reduced graphene oxide/ZrOx–MnCO3 or –Mn2O3 nanocomposite as an efficient catalyst for selective aerial oxidation of benzylic alcohols

2017

Highly reduced graphene oxide (HRG) nanocomposites of manganese carbonate doped with (1%) zirconia (ZrOx) nanoparticles [ZrOx(1%)–MnCO3/(X%)HRG (where X = 0–7)] were prepared employing a facile co-precipitation method in which the percentage of HRG was varied. The resulting nanocomposite was calcined at 300 °C. Further calcination of the catalyst at 500 °C resulted in the conversion of manganese carbonate to manganese oxide [ZrOx(1%)–Mn2O3/(X%)HRG]. The effect of the inclusion of HRG on the catalytic activity along with its comparative performance between carbonates and their respective oxides was studied for the liquid-phase selective oxidation of benzylic alcohols into corresponding aldeh…

Thermogravimetric analysisGeneral Chemical EngineeringOxide02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesNanomaterial-based catalyst0104 chemical scienceslaw.inventionCatalysischemistry.chemical_compoundchemistrylawBenzyl alcoholAlcohol oxidationCalcination0210 nano-technologySelectivityNuclear chemistryRSC Advances
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Benzyl Alcohol Assisted Synthesis and Characterization of Highly Reduced Graphene Oxide (HRG)@ZrO2 Nanocomposites

2017

We demonstrate a one-step solvothermal synthesis of HRG@ZrO2 nanocomposites using benzyl alcohol as solvent and stabilizing ligand. The as-synthesized HRG@ZrO2 hybrid nanocomposites showed a homogeneous distribution of the ZrO2 NPs (≈ 5 nm) onto HRG nanosheets. High resolution (HR)TEM, X-ray diffraction (XRD), and Raman spectroscopy confirmed the presence of cubic ZrO2. The presence of benzyl alcohol as stabilizing ligand was demonstrated by ultraviolet-visible (UV-vis), Fourier-transform infrared (FT-IR) spectroscopy and thermogravimetric analysis (TGA). The reduction of graphene oxide to HRG was also realized by X-ray photoelectron spectroscopy (XPS). A study of the HRG@ZrO2 formation mec…

Thermogravimetric analysisMaterials scienceGrapheneLigandSolvothermal synthesisOxide02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical scienceslaw.inventionchemistry.chemical_compoundsymbols.namesakechemistryX-ray photoelectron spectroscopylawBenzyl alcoholsymbolsOrganic chemistry0210 nano-technologyRaman spectroscopyNuclear chemistryChemistrySelect
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Synthesis and Comparative Catalytic Study of Zirconia-MnCO3or -Mn2O3for the Oxidation of Benzylic Alcohols

2016

Abstract We report on the synthesis of the zirconia–manganese carbonate ZrO x (x  %)–MnCO3 catalyst (where x=1–7) that, upon calcination at 500 °C, is converted to zirconia–manganese oxide ZrO x (x  %)–Mn2O3. We also present a comparative study of the catalytic performance of the both catalysts for the oxidation of benzylic alcohol to corresponding aldehydes by using molecular oxygen as the oxidizing agent. ZrO x (x  %)–MnCO3 was prepared through co‐precipitation by varying the amounts of Zr(NO3)4 (w/w %) in Mn(NO3)2. The morphology, composition, and crystallinity of the as‐synthesized product and the catalysts prepared upon calcination were studied by using scanning electron microscopy, tr…

Thermogravimetric analysisOxide02 engineering and technology010402 general chemistry01 natural sciencesCatalysislaw.inventionchemistry.chemical_compoundlawOxidizing agentThermal stabilityCalcinationmanganese oxideFull PaperChemistrymanganese carbonateGeneral ChemistryFull Papers021001 nanoscience & nanotechnology0104 chemical sciencesmixed metal oxidesBenzyl alcoholAlcohol oxidation0210 nano-technologybenzyl alcohol oxidationzirconiaNuclear chemistryChemistryOpen
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Interaction of an odorant lactone with model phospholipid bilayers and its strong fluidizing action in yeast membrane

2003

International audience; Some odorant lactones are naturally present in fruits or in fermented products; they can also be used as food additives and can be produced by microorganisms at the industrial scale by biotechnological processes. Gamma-decalactone was previously shown to have antimicrobial properties. We determined by infrared spectroscopy measurements that this compound rapidly diffused into model phospholipid bilayers (within 2 min), modifying the general physical state of a dimyristoyl-L-alpha-phosphatidylcholine (DMPC) film. In vivo, the lactone strongly increased membrane fluidity in the model yeast Yarrowia lipolytica, as evaluated by fluorescence anisotropy measurements. This …

Time Factors[SDV.BIO]Life Sciences [q-bio]/BiotechnologyLipid BilayersYarrowiaMESH : Models BiologicalLactonesMESH : Spectroscopy Fourier Transform InfraredMESH: Dimyristoylphosphatidylcholinechemistry.chemical_compoundMESH : DimyristoylphosphatidylcholineSpectroscopy Fourier Transform InfraredMembrane fluidityOrganic chemistryMESH : Anti-Bacterial Agents[INFO.INFO-BT]Computer Science [cs]/BiotechnologyAntibacterial agentMESH : Spectrometry FluorescencebiologyMESH: Lipid BilayersMESH: Indicators and Reagentsfood and beveragesGeneral MedicineAnti-Bacterial AgentsMESH : LactonesMembraneBenzyl alcoholDimyristoylphosphatidylcholine[ INFO.INFO-BT ] Computer Science [cs]/BiotechnologyMESH: LactonesMESH: Spectrometry FluorescenceMESH : Time FactorsMESH : YarrowiaPhospholipid[SDV.BC]Life Sciences [q-bio]/Cellular BiologyModels BiologicalMicrobiologyMESH: Spectroscopy Fourier Transform InfraredMESH : Indicators and ReagentsMESH: Anti-Bacterial Agents[ SDV.BC ] Life Sciences [q-bio]/Cellular BiologyMESH: Time FactorsMESH: Models Biological[ SDV.BIO ] Life Sciences [q-bio]/BiotechnologyYarrowiaBiological membranebiology.organism_classificationYeastSpectrometry FluorescencechemistryIndicators and ReagentsMESH: YarrowiaMESH : Lipid BilayersFood ScienceInternational Journal of Food Microbiology
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Structural, energetic and kinetic database of catalytic reactions: Benzyl alcohol to benzaldehyde oxidation on MnOx clusters

2021

Abstract Data here reported are connected with the research article “Benzyl Alcohol to Benzaldehyde Oxidation on MnO x Clusters: Unraveling Atomistic Features” Gueci et al. [1] . This work described and discussed structural and energetic results, calculated by Density Functional Theory (DFT). In order to get kinetic information, DFT results were refined by an original approach, which will be shortly described in the following article. The crossed analysis of experimental and computational energetic and kinetic data allowed to (i) reconstruct the complicated lattice that connects the primary and secondary mechanisms of the reaction and (ii) identify alternative process pathways capable of by…

Work (thermodynamics)Science (General)MultidisciplinaryMaterials scienceMnOx Oxidative–dehydrogenation Deactivation Remediation DFT Reaction kineticMnOxComputer applications to medicine. Medical informaticsKineticsDeactivationReaction kineticR858-859.7RemediationAlternative processHeterogeneous catalysisDFTCatalysisBenzaldehydeQ1-390chemistry.chemical_compoundchemistryBenzyl alcoholComputational chemistryDensity functional theoryOxidative–dehydrogenationSettore CHIM/02 - Chimica FisicaData in Brief
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Regulation of the synthesis of aryl metabolites by phospholipid sources in the white-rot fungus Bjerkandera adusta

1999

The white-rot basidiomycete Bjerkandera adusta was cultivated in a liquid medium enriched with l-phenylalanine and various phospholipid sources (lecithin, egg yolk and asolectin). Three aromatic metabolites (benzaldehyde, benzyl alcohol and benzoic acid) were produced under these culture conditions. High concentrations of benzaldehyde (404 mg l–1) were obtained when the cultures were supplemented with 10 g lecithin l–1. Benzyl alcohol production was promoted when the strain was grown with 5 or 10 g lecithin l–1. In the absence of or with a low concentration of lecithin (2.5 g l–1), benzoic acid was the major aryl metabolite synthesized. The results presented here indicate that aryl alcohol …

[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process EngineeringMetabolite[SDV]Life Sciences [q-bio]PhospholipidBiochemistryMicrobiologyBenzaldehyde03 medical and health scienceschemistry.chemical_compoundBjerkandera adusta[SDV.IDA]Life Sciences [q-bio]/Food engineeringGeneticsAryl-alcohol oxidaseOrganic chemistry[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process EngineeringMolecular BiologyComputingMilieux_MISCELLANEOUS030304 developmental biologyBenzoic acid0303 health sciencesbiology030306 microbiologyArylGeneral Medicine[SDV.IDA] Life Sciences [q-bio]/Food engineeringbiology.organism_classification[SDV] Life Sciences [q-bio]chemistryBenzyl alcohollipids (amino acids peptides and proteins)
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Photocatalytic oxidation of aromatic alcohols to aldehydes in aqueous suspension of home prepared titanium dioxide

2008

In this paper some intrinsic electronic properties of home prepared (HP) TiO2 catalysts were investigated by diffuse reflectance spectroscopy and quasi-Fermi level measurements. These powders were used for carrying out the photocatalytic oxidation of benzyl alcohol to benzaldehyde and CO2 in water; the selectivity for aldehyde formation was enhanced by the addition of small amounts of ethanol, a typical hole trap. The values of band gap, valence band and conduction band edges are almost identical for all the HP samples in which anatase phase is predominant, whereas appreciable differences can be noticed for an HP sample containing high amount of rutile phase. A comparative ATR-FTIR study of…

chemistry.chemical_classificationAnataseProcess Chemistry and TechnologyInorganic chemistryAldehydeCatalysisCatalysisBenzaldehydechemistry.chemical_compoundchemistryBenzyl alcoholTitanium dioxidePhotocatalysisSelectivityApplied Catalysis A: General
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Selective oxidation of aromatic alcohols in the presence of C3N4 photocatalysts derived from the polycondensation of melamine, cyanuric and barbituri…

2021

AbstractA set of C3N4 samples has been prepared by using melamine, cyanuric acid and barbituric acid as the precursors. The materials were subjected both to physical and chemical characterization and were used as photocatalysts for the selective oxidation of aromatic alcohols in water suspension under UV and visible irradiation. The photoactivity of the materials versus the partial oxidation of four substituted benzyl alcohols was investigated. The type and position of the substituents in the aromatic molecule influenced conversion and selectivity to the corresponding aldehyde. The presence of barbituric and cyanuric acids in the preparation method has changed the graphitic-C3N4 structure, …

chemistry.chemical_classificationBarbituric acidGeneral ChemistryAldehydeC3N4Catalysischemistry.chemical_compoundBenzyl alcoholschemistryAromatic alcoholPhotocatalysisOrganic chemistrySelective oxidationPartial oxidationPhotocatalysisMelamineCyanuric acidSelectivityResearch on Chemical Intermediates
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Studien zum Vorgang der Wasserstoffübertragung, 45. Elektroreduktion aromatischer Carbonsäureester

1977

Bei der Elektroreduktion der Benzoesaureester 1 in Alkoholen an einer Quecksilberkathode mit quartare Ammoniumleitsalzen entsteht ein Gemisch von partiell kernhydrierten Reaktionsprodukten und Benzylalkohol (Tabelle 3). Elektroreduziert man jedoch in Gegenwart von Essigsaure, so wird die Kernhydrierung vollstandig unterdruckt und es entstehen ca. 70% Benzylalkohol (3) neben ca. 30% 1,2-Diphenylethylenglykol (9) als Hydrodimerem (Tabelle 4). Benzoesaure-phenylester (2h) wird nahezu ausschlieslich zu Benzylalkohol (3) elektroreduziert; Substituenten an der Benzoesaure (Verbindungen 2a-i) verandern diesen Reaktionsablauf nicht, wenn in Gegenwart von Essigsaure gearbeitet wird (Tabelle 8).Gleic…

chemistry.chemical_classificationCarboxylic acidOrganic ChemistryEthylenediamineAldehydeHydrolysischemistry.chemical_compoundAcetic acidBenzylaminechemistryBenzyl alcoholPolymer chemistryPhysical and Theoretical ChemistryBenzoic acidJustus Liebigs Annalen der Chemie
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