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Metalloporphyrin metalloporphyrins

Epoxidation Catalyzed by Metalloporphyrins. Metalloporphyrins, which have thoroughly studied as catalysts in alkane oxygenations, have also been tested as epoxidation catalysts.119,122,244,245,307 Iodosylbenzene (PhIO), sodium hypochlorite, alkyl hydroperoxides, potassium hydrogen persulfate, and molecular oxygen are the oxygen sources used most frequently in these oxidations.119... [Pg.458]

Hill J R ef a/1995 Vibrational relaxation of oarbon monoxide in model heme oompounds 6-ooordinate metalloporphyrins (M = Fe, Ru, Os) Chem. Phys. Lett. 224 218-23... [Pg.3051]

Hill J R, Ziegler C J, Susliok K S, DIott D D, Rella C W and Payer M D 1996 Tuning the vibrational relaxation of CO bound to heme and metalloporphyrin oomplexes J. Phys. Chem. 100 18023-32... [Pg.3051]

Metallacyclopentanes, 3,4-dimethylene-synthesis, 1, 669 Metallacyclopentan-2-ones synthesis, 1, 669 Metallacyclopentenes synthesis, 1, 670 Metallafluorenes synthesis, 1, 671 Metallaindanes synthesis, 1, 670 Metallaindenes synthesis, 1, 670, 671 Metallaxanthenes synthesis, 1, 671 Metalloporphyrins anions, 4, 398 demetallation, 4, 389... [Pg.702]

Eullerene-based donor-acceptor complexes and ion-radical salts with tetrathia-fulvalenes, metalloporphyrins, and cyclic amines as donors 99UK23. [Pg.212]

Binding of organic nitroso compounds to metalloporphyrins 99ACR529. Design and applications of chiral porphyrins 98YGK201. [Pg.247]

Metalloporphyrins and their analogs as photo- andradiosensitizers 99CRV2379. [Pg.248]

Oxo-hydroxo tautomerism as a useful tool in oxygenation reactions catalyzed by water-soluble metalloporphyrins 98CC2167. [Pg.248]

Photoinduced electron transfer reactions in supramolecularmodel systems based on metalloporphyrins 97YGK557. [Pg.248]

Solvation effects and coordination properties of porphyrins and metalloporphyrins in solutions 98MI19. [Pg.248]

The metalloporphyrin-catalyzed decomposition of ethyl azidoformate in the presence of an arene has been investigated but with little success in improving the yields of the 1 //-azepines.151 The nickel and copper complexes had no effect, whereas the cobalt-tetraphenylporphyrin complex accelerated the decomposition rate of the azido ester but produced more A-arylurethane rather than 1//-azepine. [Pg.140]

The high stability of porphyrins and metalloporphyrins is based on their aromaticity, so that porphyrins are not only most widespread in biological systems but also are found as geoporphyrins in sediments and have even been detected in interstellar space. The stability of the porphyrin ring system can be demonstrated by treatment with strong acids, which leave the macrocycle untouched. The instability of porphyrins occurs in reduction and oxidation reactions especially in the presence of light. The most common chemical reactivity of the porphyrin nucleus is electrophilic substitution which is typical for aromatic compounds. [Pg.577]

Chlorins are also accessible by carbene additions to C-C double bonds on the periphery of metalloporphyrins. The most effective reaction on a preparative scale is the addition of ethyl diazoacetate in refluxing benzene to copper octaethylporphyrin (4) or meso-tetraphenylpor-phyrin in the presence of copper(I) iodide,100108b 110 which gives a diastereomcric mixture of chlorins, e.g. 5. [Pg.607]

Isobacteriochlorins, since they are tetrahydroporphyrins, can be obtained by tetrahydrogena-tion of porphyrins and dihydrogenation of chlorins. However, alkali-metal reduction of porphyrins and metalloporphyrins always gives a mixture of chlorins, bacteriochlorins or isobacteriochlorins.14 The method of choice for the preparation of pure isobacteriochlorins, e.g. 2, is the diimide reduction of zinc(II) chlorins, e.g. l.15a,b... [Pg.647]

Metalloporphyrin redox reactions. L. E. Bennett, Prog. Inorg. Chem., 1973,18,1-176 (750). [Pg.31]

Kinetics and mechanism of metalloporphyrin formation. W. Schneider, Struct. Bonding (Berlin), 1975,23, 123-166 (65). [Pg.42]

Recent developments in the studies of titanium and vanadium porphyrins with special emphasis on oxygen adducts, low valent metalloporphyrins and related systems of sulphur and selenium. R. Gui-lard and C. Lecomte, Coord. Chem. Rev., 1985, 65, 87 (76). [Pg.67]

Metalloporphyrins as catalysts of chain transfer in radical polymerisation and stereoselective oxidation. L. Karmilova, G. V. Ponomarev, B. R. Smirnov and I. M. Bel yovskii, Russ. Chem. Rev. (Engl. Transl), 1984, 53,132 (44). [Pg.69]

Catalysis by metalloporphyrins of reactions involving oxidation by molecular oxygen and oxygen-containing compounds. N. S. Enikolopyan, K. A. Bogdanova, L. V. Karmilova and K. A. Askarov, Russ. Chem. Rev. (Engl. Transl.), 1985,54,215 (188). [Pg.69]

It was shown that dibenzothiophene oxide 17 is inert to 1-benzyl-l,4-dihydro nicotinamide (BNAH) but that, in the presence of catalytic amounts of metalloporphyrin, 17 is reduced quantitatively by BNAH. From experimental results with different catalysts [meso-tetraphenylporphinato iron(III) chloride (TPPFeCl) being the best] and a series of substituted sulfoxides, Oae and coworkers80 suggest an initial SET from BNAH to Fe1 followed by a second SET from the catalyst to the sulfoxide. The results are also consistent with an initial coordination of the substrate to Fem, thus weakening the sulfur-oxygen bond in a way reminiscent of the reduction of sulfoxides with sodium borohydride in the presence of catalytic amounts of cobalt chloride81. [Pg.1063]

Cohen lA (1980) Metal-Metal Interactions in the Metalloporphyrins, Metalloproteins and Metalloenzymes. 40 1-37... [Pg.244]

Schmidtke H-H, Degan J (1989) A Dynamic Ligand Field Theory for Vibronic Structures Rationalizing Electronic Spectra of Transition Metal Complex Compounds. 71 99-124 Schneider W (1975) Kinetics and Mechanism of Metalloporphyrin Formation. 23 123-166... [Pg.254]


See other pages where Metalloporphyrin metalloporphyrins is mentioned: [Pg.219]    [Pg.131]    [Pg.379]    [Pg.246]    [Pg.352]    [Pg.541]    [Pg.248]    [Pg.323]    [Pg.578]    [Pg.580]    [Pg.600]    [Pg.611]    [Pg.611]    [Pg.627]    [Pg.844]    [Pg.324]    [Pg.33]    [Pg.37]    [Pg.52]    [Pg.53]    [Pg.53]    [Pg.59]    [Pg.63]    [Pg.67]    [Pg.140]    [Pg.163]    [Pg.58]    [Pg.915]    [Pg.249]   


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Amidation metalloporphyrins

Applications of Porphyrins and Metalloporphyrins to Materials Chemistry

Autoxidation, metalloporphyrins

Azanone with metalloporphyrins

Catalyst metalloporphyrin

Catalysts metalloporphyrins

Chiral metalloporphyrin

Closed shell metalloporphyrins

Cytochrome metalloporphyrin model systems

Demetalation of metalloporphyrins

Divalent metalloporphyrin

Electrocatalysts metalloporphyrins

Electron-transfer reactions metalloporphyrins

Electronically activated metalloporphyrins

Epoxidation catalyzed by metalloporphyrins

Epoxidation metalloporphyrin catalyzed

Epoxidation metalloporphyrin-promoted

Epoxidations Catalyzed by Metalloporphyrins

Excited states of metalloporphyrins

Fluorescence from metalloporphyrins

Halogenated metalloporphyrin

Halogenated metalloporphyrins

Heme-metalloporphyrin complex

Heterodinuclear metalloporphyrin

High-valent metalloporphyrin

Hydrocarbons metalloporphyrin-catalyzed

Hydrogen metalloporphyrins

Hydroxylation metalloporphyrin-catalyzed

Inorganic metalloporphyrin

Intercalation metalloporphyrins

Iron complexes metalloporphyrins

Kinetics and mechanisms of metalloporphyrin reactions

Mercury metalloporphyrins

Metal macrocyclics metalloporphyrins

Metal-organic frameworks metalloporphyrin

Metallo-complexes metalloporphyrins

Metalloporphyrin

Metalloporphyrin

Metalloporphyrin Asphaltenes

Metalloporphyrin alkylated

Metalloporphyrin amphiphilic

Metalloporphyrin anion, nucleophilicity

Metalloporphyrin cation radicals

Metalloporphyrin chiral oxidations

Metalloporphyrin complex geometry

Metalloporphyrin complexes

Metalloporphyrin components

Metalloporphyrin crown ether compounds

Metalloporphyrin cyclic voltammograms

Metalloporphyrin demetallation studies

Metalloporphyrin dioxygen complexes

Metalloporphyrin effectiveness factor

Metalloporphyrin electronic structure

Metalloporphyrin excited state

Metalloporphyrin films

Metalloporphyrin films oxygen

Metalloporphyrin formation

Metalloporphyrin hydrogenated intermediates

Metalloporphyrin hydroxylation

Metalloporphyrin initiators

Metalloporphyrin intermediate, active oxygen

Metalloporphyrin liganded

Metalloporphyrin model systems

Metalloporphyrin molecular size

Metalloporphyrin olefin epoxidation

Metalloporphyrin oxygen donors

Metalloporphyrin oxygen transfer catalyzed

Metalloporphyrin precipitation

Metalloporphyrin reaction pathways

Metalloporphyrin reaction selectivity

Metalloporphyrin reactions

Metalloporphyrin reactivity

Metalloporphyrin receptors

Metalloporphyrin receptors hydrogen-bonding

Metalloporphyrin redox potentials

Metalloporphyrin structure

Metalloporphyrin templates

Metalloporphyrin, diamagnetic

Metalloporphyrin, surfactant

Metalloporphyrin, water-soluble

Metalloporphyrins

Metalloporphyrins (macrocyclic

Metalloporphyrins (macrocyclic electron transfer properties

Metalloporphyrins Cation radicals

Metalloporphyrins Interaction with

Metalloporphyrins M

Metalloporphyrins activity

Metalloporphyrins amperometric sensors

Metalloporphyrins and

Metalloporphyrins and Related Compounds

Metalloporphyrins as Catalysts for Precision Macromolecular Synthesis

Metalloporphyrins as catalysts

Metalloporphyrins assembly

Metalloporphyrins biosynthesis

Metalloporphyrins cadmium porphyrins

Metalloporphyrins capped

Metalloporphyrins carbene reactions

Metalloporphyrins chemical properties

Metalloporphyrins chiral

Metalloporphyrins cobalt

Metalloporphyrins cofactor

Metalloporphyrins complexes

Metalloporphyrins coordination chemistry

Metalloporphyrins copolymerizations

Metalloporphyrins dimers

Metalloporphyrins electrical properties

Metalloporphyrins electrochemical oxidation

Metalloporphyrins electrochemical polymerization

Metalloporphyrins electrochemical properties

Metalloporphyrins electrochemical reduction

Metalloporphyrins electrochemical studies

Metalloporphyrins electrochemistry

Metalloporphyrins electron transfer rates

Metalloporphyrins electrostatic assembly

Metalloporphyrins free porphyrin ligands

Metalloporphyrins functions

Metalloporphyrins high valent

Metalloporphyrins hyper type

Metalloporphyrins hypso type

Metalloporphyrins in oxygen production from water

Metalloporphyrins in photoproduction of hydrogen from water

Metalloporphyrins ligand interactions

Metalloporphyrins living polymerization

Metalloporphyrins manganese

Metalloporphyrins metal incorporation

Metalloporphyrins metal-carbon bond containing

Metalloporphyrins metal-organic framework

Metalloporphyrins oligomers

Metalloporphyrins organic molecule interactions

Metalloporphyrins oxidation

Metalloporphyrins oxidation potentials

Metalloporphyrins oxygen carriers

Metalloporphyrins oxygen reduction

Metalloporphyrins palladium porphyrinates

Metalloporphyrins phosphorescence, quenching

Metalloporphyrins photochemical properties

Metalloporphyrins photochemistry

Metalloporphyrins platinum porphyrinates

Metalloporphyrins polymerization initiators

Metalloporphyrins polymers

Metalloporphyrins porphyrin bridge

Metalloporphyrins receptor

Metalloporphyrins redox

Metalloporphyrins redox reactivity

Metalloporphyrins reduction

Metalloporphyrins reduction potentials

Metalloporphyrins regular

Metalloporphyrins self-assembled films

Metalloporphyrins self-assembly

Metalloporphyrins solubility

Metalloporphyrins spectra

Metalloporphyrins spectroscopic properties

Metalloporphyrins spin states

Metalloporphyrins stability

Metalloporphyrins structure

Metalloporphyrins substitution

Metalloporphyrins supramolecular assembly

Metalloporphyrins synthesis

Metalloporphyrins tetra metalloporphyrin

Metalloporphyrins tetraphenylporphyrin

Metalloporphyrins transition metals

Metalloporphyrins trimers

Metalloporphyrins unusual

Metalloporphyrins zinc porphyrinates

Metalloporphyrins, alkane oxidation

Metalloporphyrins, applications

Metalloporphyrins, applications porphyrin

Metalloporphyrins, applications porphyrin complex

Metalloporphyrins, catalysts for

Metalloporphyrins, formation

Metalloporphyrins, polymer-bound

Metalloporphyrins, supported

Metalloporphyrins, voltammetry

Metalloporphyrins-dioxygen

Metalloporphyrins-dioxygen moiety

Metalloproteins model system, metalloporphyrins

Mixed metalloporphyrins

Oxidation with metalloporphyrins

Oxidations Directed by Metalloporphyrin and Metallosalen Templates

Oxidations catalyzed by metalloporphyrins and metallophthalocyanines

Oxygen with metalloporphyrins

Paramagnetic metalloporphyrin

Paramagnetic metalloporphyrins

Phosphorescence from metalloporphyrins

Phthalocyanines metalloporphyrin

Polyhalogenated metalloporphyrin

Polyhalogenated metalloporphyrins

Polymeric metalloporphyrins

Polymerizations with Metalloporphyrins

Polystyrene-metalloporphyrins

Porphyrin and Metalloporphyrin Fibres

Porphyrins and Metalloporphyrins Smith)

Porphyrins and Metalloporphyrins as Receptor Models in Molecular Recognition

Porphyrins and metalloporphyrins

Protein free metalloporphyrin

Pyrrolic Pyrrole brominated metalloporphyrins

Radiation chemical studies of porphyrins and metalloporphyrins

Reactive Metalloporphyrins

Redox Reactions of Metalloporphyrins in Biological Systems

Ruthenium metalloporphyrins

SUBJECTS metalloporphyrins

Selective membranes using metalloporphyrins

Self-Cyclization of Metalloporphyrins

Sterically hindered metalloporphyrins

Steroids metalloporphyrin

Substitutions on metalloporphyrins

Supported sulfonated metalloporphyrins

Supramolecular metalloporphyrins

Synthetic metalloporphyrins

System metalloporphyrin

The Electronic Structures of Porphyrins and Metalloporphyrins

The sequence of bonded metalloporphyrins - a molecular photonic wire

Transition metal metalloporphyrin catalysts

Trimerization, metalloporphyrin

Triplet state of metalloporphyrins

Water-soluble metalloporphyrins

Zinc - metalloporphyrin

Zinc - metalloporphyrin oligomers

Zinc ions metalloporphyrins

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