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Application of Scale of Absolute Surface Potentials to the Reactions of Chemisorption and Electrocatalysis on Metals. Part 2

机译:绝对表面电位规模在化学吸附和电催化反应对金属的应用。 第2部分

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The concepts of the absolute surface potential (ASP) E-S of the (hkl) facet of a metal crystal with E-S= G(s)/zF directly related to the Gibbs surface energy G(S) and with an equilibrium between (auto) adsorption of its own atoms on this facet of N-ad and negative charged surface vacancies (NCSV). On this basis, the ASP scale is a scale of adsorption potentials with point defectsthe NCSV and adatoms, which determine their surface statistics as a result of the action of surface and electrostatic forces on these quasiparticles. This dualism is aimed at overcoming differences in the understanding of the surface potential in Helmgholz theory and Gibbs theory. The adsorption scale of the singular metal face has a special pointthe potential of the zero charge (PZC) of the electrode with a minimum of adsorption of atoms and NCSV. Point of absolute adsorption devides the scale of cathodic and anodic polarization (Fig. 4.1, Part 1) with predominant adsorption of NCSV or adatoms, reaching the maximum degree at the potential of the second special point in each area of the ideal electrode polarization. Part 2 discusses the transition from the ASP to hydrogen scale using the ratio between the standard and absolute values of a hydrogen electrode adopted by the International Union of Physical and Applied Chemistry. Combining the ASP scale with the scale of the absolute potentials of electrode reactions made it possible to calculate the electrode potential of a chemisorption and electrocatalytic reaction of hydrogen evolution on various metals, as well as the potential for the formation of passivating oxide on metals (Ni, Cr), known as the Flade potential.
机译:金属晶体的绝对表面电位(ASP)ES的概念与ES = G(S)/ ZF直接与GIBBS表面能量G(S)和平衡(自动)吸附之间的平衡在N-AD和负电荷表面空位(NCSV)的这方面的自身原子。在此基础上,ASP标度是具有点缺陷NCSV和ADATOM的吸附电位的规模,其在这些Quasiparticles上的表面和静电力的作用导致它们的表面统计。这种二元论旨在克服掌声理论和吉布斯理论的表面潜力的差异。单数金属面的吸附量表具有特殊的指点,其具有电极的零电荷(PZC)的电位,其具有最小的原子和NCSV。绝对吸附点偏离阴极和阳极偏振的比例(图4.1,第1部分),其具有基于NCSV或吸附组织的主要吸附,达到理想电极极化的每个区域中的第二特殊点的电位的最大程度。第2部分使用国际物理和应用化学联盟采用的氢电极的标准和绝对值之间的比例讨论从ASP到氢气量的过渡。将ASP刻度与电极反应的绝对电位的规模相结合,使得可以计算氢进化对各种金属的化学吸附和电催化反应的电极电位,以及在金属上形成氧化物的可能性(Ni ,Cr),被称为翼片潜力。

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