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And proton transfer

Barbara P F, Walker G C and Smith T P 1992 Vibrational modes and the dynamic solvent effect in electron and proton transfer Science 256 975-81... [Pg.2995]

Group I metals—sodium is the one usually employed—in liquid ammonia as the solvent convert alkynes to trans alkenes The reaction proceeds by a four step sequence in which electron transfer and proton transfer steps alternate... [Pg.384]

A Warshel. Dynamics of reactions m polar solvents. Semiclassical trajectory studies of electron-transfer and proton-transfer reactions. J Phys Chem 86 2218-2224, 1982. [Pg.415]

Notice that specific acid catalysis describes a situation in which the reactant is in equilibrium with regard to proton transfer, and proton transfer is not rate-determining. On the other hand, each case that leads to general acid catalysis involves proton transfer in the rate-determining step. Because of these differences, the study of rates as a function of pH and buffer concentrations can permit conclusions about the nature of proton-transfer processes and their relationship to the rate-determining step in a reaction. [Pg.230]

Outer sphere electron transfer (e.g., [11-19,107,160-162]), ion transfer [10,109,163,164] and proton transfer [165] are among the reactions near electrodes and the hquid/liquid interface which have been studied by computer simulation. Much of this work has been reviewed recently [64,111,125,126] and will not be repeated here. All studies involve the calculation of a free energy profile as a function of a spatial or a collective solvent coordinate. [Pg.368]

One after the other, step through (or animate) the sequence of structures depicting the SN2 and proton transfer reactions shown above. Compare the two. From what direction does cyanide approach the hydrogen in HCl From the same side as Cl ( frontside ), or from the other side ( backside ) Does the Sn2 reaction follow a similar trajectory ... [Pg.86]

The mechanism of the light-promoted reaction involves a series of electron and proton transfers from water to Q. [Pg.233]

Some reviews relevant for this section concern N CPMAS [86AG(E)383] of pyrazoles, including CPMAS results (93MRC107) and proton transfer in solid heterocycles (94JHC695). The most relevant studies reported in Table X are (1) the use of C CPMAS NMR to identify... [Pg.42]

The Clemmensen reduction can be formulated to proceed by a sequence of one-electron and proton transfer reactions. It is a heterogenous reaction, taking place at the zinc surface. Initially an electron is transferred from zinc to the carbonyl group of ketone 1, leading to a radical species 3, which is presumed to react further to a zinc-carbenoid species 4 ... [Pg.62]

A large red shift observed in polar solvents was indicative of the intramolecular charge transfer character of the triplet state. The change of dipole moment accompanying the transition Tj - Tn, as well as rate constants for electron and proton transfer reactions involving the T state of a-nitronaphthalene, were determined. The lower reactivity in polar solvents was attributed to a reduced n-n and increased charge transfer character of the triplet state... [Pg.737]

Conway, B. E. Proton Solvation and Proton Transfer Processes in Solution 3... [Pg.601]

Using either of the above approaches we have measured the thermal rate constants for some 40 hydrogen atom and proton transfer reactions. The results are tabulated in Table II where the thermal rate constants are compared with the rate constants obtained at 10.5 volt cm.-1 (3.7 e.v. exit energy) either by the usual method of pressure variation or for concurrent reactions by the ratio-plot technique outlined in previous publications (14, 17, 36). The ion source temperature during these measurements was about 310°K. Table II also includes the thermal rate constants measured by others (12, 13, 33, 39) using similar pulsing techniques. [Pg.166]

Paradoxically, all these significant recent contributions to the theory of the ORR, together with most recent experimental efforts to characterize the ORR at a fuel cell cathode catalyst, have not led at aU to a consensus on either the mechanism of the ORR at Pt catalysts in acid electrolytes or even on how to properly determine this mechanism with available experimental tools. To elucidate the present mismatch of central pieces in the ORR puzzle, one can start from the identification of the slow step in the ORR sequence. With the 02-to-HOOads-to-HOads route appearing from recent DFT calculations to be the likely mechanism for the ORR at a Pt metal catalyst surface in acid electrolyte, the first electron and proton transfer to dioxygen, according to the reaction... [Pg.11]

Of course, proton transfer can also occur between two reactants in the solution. As such, it is not an electrochemical reaction, unless it is combined with an electron exchange with the electrode. Such a combined electron-proton transfer can be represented by the scheme of squares shown in Fig. 2.8. Both electron and proton transfer... [Pg.42]

Figure 2.8 Reaction scheme for combined electron and proton transfer. Figure 2.8 Reaction scheme for combined electron and proton transfer.
Figure 2.9 Model potential energy surface for combined electron and proton transfer. is the solvent coordinate for electron transfer and Q2 that for proton transfer. (See color insert.)... Figure 2.9 Model potential energy surface for combined electron and proton transfer. is the solvent coordinate for electron transfer and Q2 that for proton transfer. (See color insert.)...
Grimminger J, Bartenschlager S, Schmickler W. 2005. A model for combined electron and proton transfer in electrochemical systems. Chem Phys Lett 416 316-320. [Pg.55]


See other pages where And proton transfer is mentioned: [Pg.799]    [Pg.818]    [Pg.843]    [Pg.349]    [Pg.367]    [Pg.1037]    [Pg.85]    [Pg.86]    [Pg.61]    [Pg.30]    [Pg.99]    [Pg.738]    [Pg.215]    [Pg.413]    [Pg.620]    [Pg.119]    [Pg.71]    [Pg.72]    [Pg.112]    [Pg.201]    [Pg.1269]    [Pg.249]    [Pg.268]    [Pg.585]    [Pg.11]    [Pg.12]    [Pg.29]    [Pg.43]    [Pg.98]    [Pg.673]   
See also in sourсe #XX -- [ Pg.368 ]




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Acid and base proton transfer

Acid-Base Catalysis and Proton-Transfer Reactions

Computer Simulations of Proton Transfer in Proteins and Solutions

Coupled proton and electron transfer

Coupling between Electron and Proton Transfer

Dynamics of Ground- and Excited-State Intramolecular Proton Transfer Reactions

Electron Hydrido(dihydrogen) Complexes, Proton Transfer and C-H Activation

Electron and Proton Transfer Reactions

Electron and proton transfer

Electron, proton, and energy transfer

Fluorescence Spectroscopy and Excited State Proton Transfer

Hydride Ion, Proton and Carbocation Transfer to Monomer

Hydrogen and proton transfer

Hydrogen bonding proton transfer and

Induced proton transfer in an adduct of squaric acid and bipyridine

Ion and proton-transfer

Mechanisms, of proton transfer between oxygen and nitrogen acids

PROTON TRANSFER AND THE PRINCIPLES OF STABILITY

Photoinduced electron and proton transfer

Proton Transfer Reactions and the EVB Model

Proton Transfer Reactions of Simple and Aryl Nitroalkanes in Solution

Proton Transfer and Activation Barriers

Proton Transfer and Other ECIT Processes

Proton Transfer in Solids and Surfaces

Proton Transfer to and from Carbon in Model Reactions

Proton Transfers to and from Carbon

Proton and Hydride Transfer Reactions

Proton transfer and solvation

Proton transfer between oxygen and

Proton transfer involving anions and dianions

Proton transfer, and acidity

Proton- and ion-transfer reactions

Proton-Coupled Electron Transfer in Natural and Artificial Photosynthesis

Proton-Coupled Intramolecular Electron Transfer in Ferrocene-Quinone Conjugated Oligomers and Polymers

Proton-transfer reactions Dogonadze, Kuznetsov, and Levich

Proton-transfer reactions rates and mechanisms

Quantum and Classical Degrees of Freedom Proton Transfer

Rates, equilibria, and structures in proton-transfer reactions

Results on Proton Transfer and Deprotonation in Other Systems

RuH2(dppm)2 Dihydrogen Bonds and Proton Transfer

SN2 and Proton-Transfer Reactions

Single and relayed proton transfer in peptide

Solid-State Tautomerism, Proton Transfer, and Hydrogen Bonding

Specific Solute-Solvent Interactions and Proton Transfer Reactions

Study 5.1 Mechanistic photochemistry adiabatic proton transfer reactions of 2-naphthol and 4-hydroxyacetophenone

Tautomerism and Double Proton Transfer Mediated by Water

Tautomerism, Proton Transfer, and Resonance-Assisted Hydrogen Bonding

Theoretical Calculations of Stability and Proton Transfer

Theory of Proton and Electron Transfer in Liquids

Third Example Proton Transfer and Hydrogen Abstraction Reactions

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