1992
DOI: 10.1007/978-1-4615-3376-4_2
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Electrocatalytic Oxidation of Oxygenated Aliphatic Organic Compounds at Noble Metal Electrodes

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Cited by 127 publications
(72 citation statements)
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References 494 publications
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“…32 For Pt 50 Ru 50 at low potentials, the rate-determining step involves the activation of water (reaction 4). At higher potentials (>400 mV), where the activation of water is facile, the current density becomes first order in methanol concentration, as expected from the mechanisms of Beden et al 11 and Freeling et al 12 Remarkably, the current at the quaternary catalyst shows an approximately first-order dependence on methanol concentration, even at potentials as low as 250 mV. Apparently, the high Os content of this catalyst is sufficient to render reaction 4 rapid, relative to reaction 3, over the entire range of conditions represented in Figure 7.…”
Section: Resultssupporting
confidence: 59%
See 1 more Smart Citation
“…32 For Pt 50 Ru 50 at low potentials, the rate-determining step involves the activation of water (reaction 4). At higher potentials (>400 mV), where the activation of water is facile, the current density becomes first order in methanol concentration, as expected from the mechanisms of Beden et al 11 and Freeling et al 12 Remarkably, the current at the quaternary catalyst shows an approximately first-order dependence on methanol concentration, even at potentials as low as 250 mV. Apparently, the high Os content of this catalyst is sufficient to render reaction 4 rapid, relative to reaction 3, over the entire range of conditions represented in Figure 7.…”
Section: Resultssupporting
confidence: 59%
“…Beden et al have proposed a detailed mechanism for the oxidation of methanol at Pt electrodes. 11 The sequence of reactions 2-5, in which M represents an alloying component or promoter metal, is based on their mechanism as modified for alloys by Freelink and co-workers: 12 The best choice of alloying element(s) for an anode electrocatalyst depends on which step in this reaction sequence is ratelimiting. Oxophilic additives will directly affect the rates of CH 3 …”
Section: Introductionmentioning
confidence: 99%
“…[46] To properly normalize the catalytic activity,t he electrochemically active surface area of the nanoparticles was calculated both by using the charges of Pb UPD [40,41] and Au oxide reduction. [47,48] The electrochemical surface area of Au electrode was determined from the reductiono ft he monolayero fg old oxide. The chargeo ft he reduction of the monolayer gold oxide on ap olyorientede lectrode, when the anodic limit of the voltammogram is set just beforet he onset of oxygen evolution reaction, is 420 mCcm À2 .…”
Section: Characterization Of Preferentially Oriented Nanoparticlesmentioning
confidence: 99%
“…), é um tema de grande interesse em eletrocatálise 31,32 . Mais especificamente, estas substâncias orgânicas são consideradas como potenciais combustíveis para alimentar os dispositivos eletroquímicos chamados de células a combustível 33,34 .…”
Section: Oxidação Eletroquímica Do Metanol Sobre Eletrodos Bimetálicounclassified
“…Um desses problemas, e sem dúvida o maior deles, está relacionado à baixa performance dos eletrocatalisadores usados no ânodo 34 . Dessa forma, um dos campos de pesquisa mais importantes nesta área reside na busca de eletrocatalisadores mais efetivos para promover a oxidação destes álcoois que, idealmente, devem realizar a oxidação de forma completa até CO 2 a um sobrepotencial o mais baixo possível 32,37 . Vários são os trabalhos descritos na literatura que investigam a influência do teor de Ru, em eletrodos de PtRu, sobre a atividade catalítica destes frente a oxidação de CO e metanol.…”
Section: Oxidação Eletroquímica Do Metanol Sobre Eletrodos Bimetálicounclassified