0000000001319178

AUTHOR

Wolfgang Schade

showing 6 related works from this author

Aktive Anode auf Molybdänbasis für dehydrierende Kupplungen

2018

010405 organic chemistryChemistryGeneral Medicine010402 general chemistry01 natural sciences0104 chemical sciencesAngewandte Chemie
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About the selectivity and reactivity of active nickel electrodes in C–C coupling reactions

2020

Active anodes which are operating in highly stable protic media such as 1,1,1,3,3,3-hexafluoroisopropanol are rare. Nickel forms, within this unique solvent, a non-sacrificial active anode at constant current conditions, which is superior to the reported powerful molybdenum system. The reactivity for dehydrogenative coupling reactions of this novel active anode increases when the electrolyte is not stirred during electrolysis. Besides the aryl-aryl coupling, a dehydrogenative arylation reaction of benzylic nitriles was found while stirring the mixture providing quick access to synthetically useful building blocks.

ElectrolysisChemistryGeneral Chemical Engineeringchemistry.chemical_elementGeneral ChemistryElectrolyteCombinatorial chemistryCoupling reactionAnodelaw.inventionSolventNickellawReactivity (chemistry)SelectivityRSC Advances
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Electrical and photoelectrical measurements on ZnO-Nanowires coated with PEDOT:PSS for Dye-Sensitized Solar Cells

2011

ABSTRACTDye-sensitized solar cells composed of an n-doped ZnO nanowire array and a p-doped polymer layer appears to be a promising candidate for low-cost production of environment-friendly solar cells. In this work, we investigate hybrid devices consisting of a transparent conducting oxide (TCO) substrate, ZnO-nanowires (ZnO-NW) or a sol-gel prepared ZnO layer, a ruthenium dye (N719) and a PEDOT:PSS or P3HT layer. The dense polycrystalline ZnO layer is able to prevent short circuits, which have a strong effect on the performance of the solar cells. This is demonstrated by the use of only the ZnO layer which improves the open circuit voltage by a factor of 2 and the efficiency by a factor of…

Dye-sensitized solar cellMaterials sciencePEDOT:PSSbusiness.industryOpen-circuit voltageSchottky barrierNanowireOptoelectronicsSubstrate (electronics)businessShort circuitLayer (electronics)MRS Proceedings
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Active Molybdenum‐Based Anode for Dehydrogenative Coupling Reactions

2018

A new and powerful active anode system that can be operated in 1,1,1,3,3,3-hexafluoro-2-propanol (HFIP) has been discovered. In HFIP the molybdenum anode forms a compact, conductive, and electroactive layer of higher-valent molybdenum species. This system can replace powerful but stoichiometrically required MoV reagents for the dehydrogenative coupling of aryls. This electrolytic reaction is more sustainable and allows the conversion of a broad scope of activated arenes.

Materials science010405 organic chemistrychemistry.chemical_elementGeneral ChemistryElectrolyte010402 general chemistryElectrochemistry01 natural sciencesCombinatorial chemistryCatalysisCoupling reaction0104 chemical sciencesAnodechemistryMolybdenumReagentOxidative coupling of methaneStoichiometryAngewandte Chemie International Edition
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High-Temperature Electrolysis of Kraft Lignin for Selective Vanillin Formation

2020

Lignin represents the largest renewable resource of aromatic moieties on earth and harbors a huge potential as a sustainable feedstock for the synthesis of biobased aromatic fine chemicals. Due to the complex, heterogeneous, and robust chemical structure of the biopolymer, the valorization is associated with significant challenges. Unfortunately, technical lignins, which are a large side stream of the pulp and paper industries, are mainly thermally exploited. In this study, technical Kraft lignin was selectively electrochemically depolymerized to the aroma chemical vanillin. Using electricity, toxic and/or expensive oxidizers could be replaced. The electrodegradation of Kraft lignin was per…

Kraft ligninRenewable Energy Sustainability and the EnvironmentChemistryGeneral Chemical EngineeringVanillinVanillin formation02 engineering and technologyGeneral ChemistryRaw material010402 general chemistry021001 nanoscience & nanotechnologyElectrosynthesisPulp and paper industrycomplex mixtures01 natural sciences0104 chemical scienceschemistry.chemical_compoundHigh-temperature electrolysisEnvironmental ChemistryLignin0210 nano-technologyRenewable resourceACS Sustainable Chemistry & Engineering
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CCDC 1976461: Experimental Crystal Structure Determination

2020

Related Article: Sebastian B. Beil, Manuel Breiner, Lara Schulz, Aaron Schüll, Timo Müller, Dieter Schollmeyer, Alexander Bomm, Michael Holtkamp, Uwe Karst, Wolfgang Schade, Siegfried R. Waldvogel|2020|RSC Advances|10|14249|doi:10.1039/D0RA02673E

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters(3-bromo-4-methoxyphenyl)(34-dimethoxyphenyl)acetonitrile methanol solvateExperimental 3D Coordinates
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