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Hydrogen catalyzed

Tetracyanoethylene undergoes two principal types of reactions, addition to the double bond and replacement of a cyano group. Addition of hydrogen catalyzed by Pd gives 1,1,2,2,-tetracyanoethane [14778-29-1] (14). [Pg.403]

Scheme 1 Mechanism of NBR hydrogenation catalyzed by RhCKPPhsls. Source Ref. 8. Scheme 1 Mechanism of NBR hydrogenation catalyzed by RhCKPPhsls. Source Ref. 8.
Moreover, in the case of hydride intervention, still a further factor, namely the kinetics of hydrogen diffusion into the metal, influences also the overall kinetics by removing a reactant from a reaction zone. In order to compare the velocity of reaction of hydrogen, catalyzed by palladium, with the velocity of the same reaction proceeding on the palladium hydride catalyst, it might be necessary to conduct the kinetic investigations under conditions when no hydride formation is possible and also when a specially prepared hydride is present in the system from the very beginning. [Pg.256]

The mechanism of homogeneous hydrogenation catalyzed by RhCl(Ph3P)3 ° involves reaction of the catalyst with hydrogen to form a metal hydride (PPh3)2RhH2Cl (43), which rapidly transfers two hydrogen atoms to the alkene. [Pg.1006]

A. Homogeneous Hydrogenation Catalyzed by Cobalt Cyanide Complexes. 433... [Pg.331]

Erankel, E. (1970) Conversion of polyunsaturates in vegetable oils to cis Monounsaturates by homogeneous hydrogenation catalyzed with chromium carbonyls./.Am. Oil Chem. Soc., 47, 11-14. [Pg.186]

Scheme 13 Morris asymmetric hydrogenation catalyzed by iron complex 12... Scheme 13 Morris asymmetric hydrogenation catalyzed by iron complex 12...
Fig. 7 Dependence of IR band intensities on H2 partial pressure during ethene hydrogenation catalyzed by Ir4/y-Al203 at 288 K and 760 Torr (40 Torr C2H4, 50-300 Torr H2, and the balance He). The bands at 2990 (diamonds) and 2981 cnr (squares) were chosen to represent di-cr-bonded ethene and that at 1635 cnr (circles) to represent water on the y-AbOs support. These IR bands were chosen as the best ones to minimize error caused by overlap with other bands. The triangles represent the reaction rate expressed as a turnover frequency (TOF), the rate of reaction in units of molecules of ethene converted per Ir atom per second. The data indicate a correlation of the band intensities with the TOF, consistent with the suggestion that the ligands represented by the bands are reaction intermediates (but the data are not sufficient to identify the reaction intermediates) [39]... Fig. 7 Dependence of IR band intensities on H2 partial pressure during ethene hydrogenation catalyzed by Ir4/y-Al203 at 288 K and 760 Torr (40 Torr C2H4, 50-300 Torr H2, and the balance He). The bands at 2990 (diamonds) and 2981 cnr (squares) were chosen to represent di-cr-bonded ethene and that at 1635 cnr (circles) to represent water on the y-AbOs support. These IR bands were chosen as the best ones to minimize error caused by overlap with other bands. The triangles represent the reaction rate expressed as a turnover frequency (TOF), the rate of reaction in units of molecules of ethene converted per Ir atom per second. The data indicate a correlation of the band intensities with the TOF, consistent with the suggestion that the ligands represented by the bands are reaction intermediates (but the data are not sufficient to identify the reaction intermediates) [39]...
Fig. 8 Dependence of catalytic activity measured by TOP (rate of reaction per Rh atom) (squares) and IR intensity of hydride (2020-cm mode) (diamonds) during the induction period for ethene hydrogenation catalyzed by Rhg supported on La203 at 298 K and atmospheric pressure in a flow reactor (partial pressures in feed H2, 348 Torr C2H4, 75Torr He, 337 Torr) [37]... Fig. 8 Dependence of catalytic activity measured by TOP (rate of reaction per Rh atom) (squares) and IR intensity of hydride (2020-cm mode) (diamonds) during the induction period for ethene hydrogenation catalyzed by Rhg supported on La203 at 298 K and atmospheric pressure in a flow reactor (partial pressures in feed H2, 348 Torr C2H4, 75Torr He, 337 Torr) [37]...
The mechanism of alkene hydrogenation catalyzed by the neutral rhodium complex RhCl(PPh3)3 (Wilkinson s catalyst) has been characterized in detail by Halpern [36-38]. The hydrogen oxidative addition step involves initial dissociation of PPI13, which enhances the rate of hydrogen activation by a factor... [Pg.89]

Ester formation catalyzed by lipase (Mucor miehei) in conjunction with hydrogenation catalyzed by a rhodium complex Sol-gel immobilization of both catalysts... [Pg.148]

Kinetic data on cyclohexene hydrogenation catalyzed by RhClL species (n = 1, 2, or 3 L = p-dimethylaminophenyl phosphines) were interpreted in terms of active dimer catalysts (cf. 1), possibly involving coordination through nitrogen as well as phosphorus (82). [Pg.323]

Further mechanistic insights into hydrogenations catalyzed by HRuCl(PPh3)3 (7, p. 83) have been obtained indirectly, from studies on hydrogenation of some ruthenium(III) phosphine complexes (83). A frequently considered mechanism for hydrogen reduction of metal salts involves slow formation of an intermediate monohydride, followed by a faster reaction between the hydride and starting complex (/, p. 72), Eqs. (2) and (3) ... [Pg.323]

The occurrence of multinuclear catalysts in hydrogenations catalyzed by rhodium-DIOP systems seems unlikely, although the trans-RhCl(CO)(DIOP) complex 43 is dimeric (276), and in basic methanolic solution the 1 1 diphos complex exists as Rh3(diphos)3(OMe)2 + (138a, Section II, B, 1). [Pg.353]

Asymmetric hydrogenations catalyzed by supported transition metal complexes have included use of both chiral support materials (poly-imines, polysaccharides, and polyalcohols), and bonded chiral phosphines, although there have been only a few reports in this area. [Pg.366]

Olefin hydrogenation catalyzed by Fe(CO)s normally requires somewhat severe conditions, typically 150°C and 10 atm H2 (/, p. 64). With near-ultraviolet irradiation the carbonyl becomes effective at ambient conditions for hydrogenation (and isomerization) of olefins (448, 449). Photoinduced labilization of carbonyls is thought to give tricarbonyl species as the active catalysts, e.g.,... [Pg.378]

Dimersol X A process for dimerizing mixed butenes to mixed octenes. Selective hydrogenation, catalyzed by a soluble Ziegler catalyst, is used. The spent catalyst is discarded. The process was developed by IFP and first operated at Kashima, Japan, in 1980. BASF has used the process in Ludwigshafen since 1985. [Pg.88]

Fig. 3.1 G raphical illustration of numbers of reports per year versus date of publication. Data were obtained by searching the Chemical Abstracts Database using the term hydrogenation catalyzed by ruthenium complexes or osmium complexes or rhodium complexes. These are not comprehensive searches but are still representative of the activity in the field. Fig. 3.1 G raphical illustration of numbers of reports per year versus date of publication. Data were obtained by searching the Chemical Abstracts Database using the term hydrogenation catalyzed by ruthenium complexes or osmium complexes or rhodium complexes. These are not comprehensive searches but are still representative of the activity in the field.
A similar H2 activation mechanism was proposed for the [Pd(NN S)Cl] complexes (5 in Scheme 4.5) in the semi-hydrogenation of phenylacetylene [45] after formation of the hydride 14 (Scheme 4.9), coordination of the alkyne occurs by displacement of the chloride ligand from Pd (15). The observed chemos-electivity (up to 96% to styrene) was indeed ascribed to the chloride anion, which can be removed from the coordination sphere by phenylacetylene, but not by the poorer coordinating styrene. This was substantiated by the lower che-moselectivities observed in the presence of halogen scavengers, or in the hydrogenations catalyzed by acetate complexes of formula [Pd(NN S)(OAc)]. Here, the acetate anion can be easily removed by either phenylacetylene or styrene. [Pg.85]

Oxidative addition of molecular hydrogen was considered to be involved in the alkyne hydrogenations catalyzed by [Pd(Ar-bian)(dmf)] complexes (4 in Scheme 4.4) [41, 42]. Although the mechanism was not completely addressed, 4 was considered to be the pre-catalyst, the real catalyst most likely being the [Pd(Ar-bian)(alkyne)] complex 18 in Scheme 4.11. Alkyne complex 18 was then invoked to undergo oxidative addition of H2 followed by insertion/elimination or pairwise transfer of hydrogen atoms, giving rise to the alkene-complex 19. [Pg.86]


See other pages where Hydrogen catalyzed is mentioned: [Pg.416]    [Pg.172]    [Pg.267]    [Pg.561]    [Pg.562]    [Pg.433]    [Pg.438]    [Pg.38]    [Pg.39]    [Pg.89]    [Pg.90]    [Pg.91]    [Pg.172]    [Pg.61]    [Pg.26]    [Pg.78]    [Pg.324]    [Pg.325]    [Pg.331]    [Pg.332]    [Pg.333]    [Pg.343]    [Pg.362]    [Pg.371]    [Pg.75]    [Pg.79]   
See also in sourсe #XX -- [ Pg.298 ]




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A Iodate Catalyzed Decomposition of Hydrogen Peroxide (Bray-Liebhafsky Reaction)

A ruthenium-catalyzed hydrogenation

Acid-Catalyzed Hydrogen Exchange as a Quantitative Measure of Reactivity

Acid-Catalyzed Hydrogen Exchange of Dithienothiophenes

Acid-catalyzed hydrogen exchange

Acid-catalyzed hydrogen isotope

Acid-catalyzed hydrogen isotope exchange

Acrylamide, catalyzed hydrogenation

Active hydrogen compounds base-catalyzed

Anthony O. King 2 Palladium-Catalyzed Hydrogenation Equivalents

Anthony O. King, Robert D. Larsen, and Ei-ichi Negishi 2 Palladium-Catalyzed Homogeneous Hydrogenation

Applications of Chiral Phosphorous Ligands in Rhodium-Catalyzed Asymmetric Hydrogenation

Aromatic rings metal-catalyzed hydrogenations

Asymmetric transfer hydrogenation catalyzed, metal-ligand

Base-catalyzed hydrogen exchange

Base-catalyzed hydrogen exchange rates

Base-catalyzed hydrogen isotope

Base-catalyzed hydrogen isotope aromatics

Base-catalyzed hydrogen isotope exchange

Base-catalyzed hydrogen isotope preparation

Benzene hydrogenation, catalyzing

Biocatalyst metal-catalyzed hydrogenation

Butadiene hydrogenation, palladium catalyzed

Carbonyl catalyzed asymmetric homogeneous hydrogenation

Carbonyl catalyzed hydrogenation, probes

Case Study II Heterogeneously Catalyzed Hydrogenation of Hexene

Case Study Iron-Catalyzed Oxidation of Ethanol with Hydrogen Peroxide

Catalytically Enhanced NMR of Heterogeneously Catalyzed Hydrogenations

Catalyzed Hydrogenation of Alkynes and Conjugated Dienes

Complex hydrogenation catalyzed

Complex-catalyzed Hydrogenation in Micellar Media

Coupled heterogeneously catalyzed hydrogenation

Diphosphine Ligands for Rh Catalyzed Asymmetric Hydrogenation

Ei-ichi Negishi 2 Palladium-Catalyzed Hydrogenation

Enantioselective ruthenium-catalyzed hydrogenation of vinylphosphonic acids

Fumaric acid, catalyzed hydrogenation

Furan acid-catalyzed hydrogen exchange

Heterogeneous metal-catalyzed hydrogen

Heterogeneously Catalyzed Hydrogenation Reactions

Heterogeneously Catalyzed Hydrogenation of Imines

Heterogeneously catalyzed hydrogenation imines

Homogeneous hydrogenation, catalyzed

Homogeneous hydrogenation, catalyzed mechanism

Homogeneous rhodium catalyzed alkene hydrogenations

Homogeneously Catalyzed Hydrogenation Reactions

Hydrogen acid catalyzed

Hydrogen base-catalyzed

Hydrogen bond catalyzed aza-Henry

Hydrogen bond catalyzed aza-Henry reaction

Hydrogen bromide, carbon-catalyzed synthesis

Hydrogen chloride catalyzed alkylation

Hydrogen exchange base-catalyzed, stereochemistry

Hydrogen exchange, acid-catalyzed 1.2.4- triazines

Hydrogen exchange, acid-catalyzed azoles

Hydrogen exchange, base-catalyzed 1,2,4-triazines

Hydrogen exchange, base-catalyzed azoles

Hydrogen exchange, base-catalyzed azolium ions

Hydrogen metal catalyzed

Hydrogen nickel-catalyzed effect

Hydrogen nickel-catalyzed methanol

Hydrogen peroxidase catalyzed

Hydrogen peroxide catalyzed oxidations

Hydrogen peroxide enzyme-catalyzed oxidation

Hydrogen peroxide metal-catalyzed cleavage

Hydrogen peroxide, decomposition catalyzed

Hydrogen proline-catalyzed reactions

Hydrogen transfer reactions catalyzed transition metal complexes

Hydrogen transfer reactions, catalyzed

Hydrogen transfer reactions, catalyzed investigations

Hydrogen-deuterium exchange, base catalyzed

Hydrogen-deuterium exchange, catalyzed

Hydrogenation BINAP-RuCl2-catalyzed

Hydrogenation Reactions Catalyzed by Transition Metal Complexes

Hydrogenation catalyzed by transition metal

Hydrogenation cobalt-catalyzed

Hydrogenation double ruthenium catalyzed

Hydrogenation heterogeneously catalyzed

Hydrogenation metal-catalyzed

Hydrogenation, base catalyzed

Hydrogenation, base catalyzed Subject

Hydrogenation, catalyzed

Hydrogenation, catalyzed

Hydrogenation, catalyzed asymmetric syntheses

Hydrogenation, catalyzed by supported

Hydrogenation, catalyzed catalyst nature

Hydrogenation, catalyzed chromium

Hydrogenation, catalyzed mechanistic studies

Hydrogenation, catalyzed rhodium

Hydrogenation, catalyzed ruthenium

Hydrogenation, zirconocene-catalyzed

Imines titanium catalyzed hydrogenation

Ir-Catalyzed Heterocyclization by C-H Bond Activation through Transfer Hydrogenation

Ir-catalyzed hydrogenation

Ir-catalyzed hydrogenation of imines

Iridium catalyzed imine hydrogenation

Iridium catalyzed imine hydrogenation asymmetric

Iridium-Complex-Catalyzed Hydrogenations

Iridium-catalyzed hydrogenation

Iridium-catalyzed hydrogenation asymmetric

Iridium-catalyzed hydrogenation esters

Iridium-catalyzed hydrogenation imines

Iridium-catalyzed hydrogenation ketones

Iridium-catalyzed hydrogenation olefins

Iridium-catalyzed transfer hydrogenation

Iridium-catalyzed transfer hydrogenation reaction

Ketone hydrogenation ruthenium-catalyzed

Kinetic heterogeneously catalyzed hydrogenation

Late-Metal-Catalyzed Hydrogenation and Hydrometallation (Pd, Pt, Rh)

Ligand Scaffold Optimization in Rhodium-Catalyzed Asymmetric Hydrogenation

Ligands for Iridium-catalyzed Asymmetric Hydrogenation of Challenging Substrates

Liquid-Phase Oxidations with Hydrogen Peroxide and Molecular Oxygen Catalyzed by Polyoxometalate-Based Compounds

Maleic acid, catalyzed hydrogenation

Manganese-Catalyzed Oxidation with Hydrogen Peroxide

Metal-catalyzed autoxidation, hydrogen

Metal-catalyzed hydrogen exchange

Metal-catalyzed hydrogenation reactions

Metal-catalyzed hydrogenations diastereoselective hydrogenation

Metal-catalyzed hydrogenations heterogeneous conditions

Metal-catalyzed hydrogenations homogeneous conditions

Metal-catalyzed hydrogenations organometallic complexes

Metal-catalyzed hydrogenations proposed arene hydrogenation mechanism

Metal-catalyzed hydrogenations stereoselective hydrogenation

Metal-catalyzed hydrogenations supported materials

Metal-catalyzed hydrogenations supported nanoparticles

Metal-free reduction of imines enantioselective Br0nsted acid-catalyzed transfer hydrogenation using chiral BINOL-phosphates as catalysts

Nickel-complex-catalyzed reactions hydrogenation

Olefin hydrogenation rhodium-catalyzed

Olefin hydrogenation ruthenium-catalyzed

Olefins catalyzed hydrogenation

Organolanthanide-catalyzed Hydrogenation Reactions

Oximes, acid catalyzed catalytic hydrogenation

P450-catalyzed hydrogen atom abstraction

Palladium-Catalyzed Heterogeneous Hydrogenation

Palladium-Catalyzed Homogeneous Hydrogenation with Dihydrogen and Related Hydrogen Transfer Reactions

Palladium-catalyzed hydrogenation

Palladium-catalyzed hydrogenation reaction

Pd-catalyzed asymmetric hydrogenation of indoles

Pd-catalyzed hydrogenation

Pyridazine 1-oxides base-catalyzed hydrogen-exchange

Pyridazines base-catalyzed hydrogen exchange

Pyrimidines base-catalyzed hydrogen exchange

Raney Ni-catalyzed hydrogenation

Reactions catalyzed by hydrogen fluoride

Reactions heterogeneous catalyzed hydrogenation

Rh-Catalyzed Asymmetric Hydrogenation Reactions

Rh-catalyzed asymmetric hydrogenation

Rh-catalyzed hydrogenation

Rh-catalyzed hydrogenation of enamides

Rhodium catalyzed asymmetric imine hydrogenation catalysts

Rhodium catalyzed hydrogenation alkenes

Rhodium catalyzed hydrogenations enamides

Rhodium-Catalyzed Asymmetric Hydrogenation of Functionalized Alkenes

Rhodium-Catalyzed Enantioselective Hydrogenation of Functionalized Ketones

Rhodium-Catalyzed Hydrogenation of Alkynes and Conjugated Dienes

Rhodium-catalyzed asymmetric hydrogenation

Rhodium-catalyzed asymmetric hydrogenation of indoles

Rhodium-catalyzed hydrogenation BINAP

Rhodium-catalyzed hydrogenation Wilkinson complex

Rhodium-catalyzed hydrogenation amino acid synthesis

Rhodium-catalyzed hydrogenation industrial applications

Rhodium-catalyzed hydrogenation mechanism

Rhodium-catalyzed hydrogenation phosphine ligands

Rhodium-catalyzed hydrogenation reaction conditions

Rhodium-catalyzed hydrogenation, in a CFMR

Rhodium-catalyzed hydrogenation, reaction

Rhodium-catalyzed hydrogenation, reaction pathway

Ru Catalyzed Asymmetric Hydrogenation of Quinolines

Ru(II) Catalyzed Enantioselective Hydrogen Transfer

Ru-Catalyzed Asymmetric Hydrogenation

Ru-TsDPEN catalyzed transfer hydrogenation reaction

Ru-catalyzed hydrogenation of racemic 2-substituted aldehydes via dynamic kinetic resolution

Ruthenium catalyzed asymmetric hydrogenation

Ruthenium-Catalyzed Asymmetric Hydrogenation of Aromatic Ketones

Ruthenium-Complex-Catalyzed Hydrogenations

Ruthenium-catalyzed hydrogenation BINAP

Ruthenium-catalyzed hydrogenation allylic alcohols

Ruthenium-catalyzed hydrogenation catalyst preparation

Ruthenium-catalyzed hydrogenation hydrogen pressure effect

Ruthenium-catalyzed hydrogenation reaction conditions

Ruthenium-catalyzed hydrogenation reaction pathway

Ruthenium-catalyzed hydrogenation unsaturated alcohols

Ruthenium-catalyzed hydrogenation unsaturated carboxylic acids

Stereoselective synthesis iridium-catalyzed hydrogenation

Thiophene acid-catalyzed hydrogen exchange

Transition Metal Catalyzed Hydrogenations, Isomerizations, and Other Reactions

Transition metal complexes hydrogenation catalyzed

Transition metal-catalyzed hydrogenation

Transition-metal-catalyzed heterogeneous hydrogenation

Unsymmetrical Hybrid Phosphorus Containing Ligands for Rh Catalyzed Asymmetric Hydrogenation

Yields from hydrogen-chloride catalyzed alkylation

Zeolite-catalyzed hydrogenation

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