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Electrode processes at gas vertical bar salt vertical bar Pd nanoparticle vertical bar glassy carbon electrode contacts: salt effects on the oxidation of formic acid vapor and the oxidation of hydrogen

机译:气体垂直棒盐电极上的电极过程垂直棒Pd纳米粒子垂直棒玻璃碳电极接触:盐对甲酸蒸气氧化和氢氧化的影响

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摘要

The electrochemical oxidation of formic acid to CO2 is facile at nano-palladium catalysts. In conventional electrochemical systems this process is conducted in aqueous phase and the resulting formation of poorly soluble CO2 gas can limit the kinetics. Here, an alternative electrochemical system with the gas phase in closer contact to the palladium nanoparticle catalyst is investigated based on a glassy carbon electrode and a solid salt electrolyte. It is demonstrated that the reaction zone of salt (here (NH 4)2SO4 is most effective), palladium nanoparticle catalyst, and gas phase, is where the electrochemical oxidation process occurs. The effects of the type of salt, the partial pressure of formic acid, and the gas flow rate are investigated. Preliminary data for the oxidation of hydrogen gas at the saltpalladiumelectrode contact are reported. A significant salt effect on the palladium catalysed reactions is observed and potential future applications of "salt cells" in sensing are discussed. © 2011 The Royal Society of Chemistry and the Centre National de la Recherche Scientifique.
机译:在纳米钯催化剂上,甲酸容易地电化学氧化成二氧化碳。在常规的电化学系统中,该过程在水相中进行,因此形成的难溶性CO2气体会限制动力学。在此,基于玻璃碳电极和固体盐电解质,研究了气相与钯纳米颗粒催化剂紧密接触的另一种电化学系统。已证明,盐(此处(NH 4)2 SO 4最有效),钯纳米颗粒催化剂和气相的反应区是发生电化学氧化过程的地方。研究了盐类型,甲酸分压和气体流速的影响。报道了在盐钯电极接触处氢气氧化的初步数据。观察到了盐对钯催化反应的显着影响,并讨论了“盐池”在传感中的潜在未来应用。 ©2011皇家化学学会和国家科学中心。

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