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Study of the adsorption and dehydrogenation steps of ethanol on a pt-sn surface with density functional theory

机译:用密度泛函理论研究乙醇在pt-sn表面上的吸附和脱氢步骤

摘要

The development of Direct Ethanol Fuel Cells (DEFCs) is important for obtaining alternative energy converters. Within this objective, there is an interesting topic that is considered fundamental to the development of these devices: the ethanol reaction mechanism in the anode of the DEFCs. Some groups have investigated this process, but still there are many difficulties to achieve a complete understanding of the ethanol reaction mechanism. Using experimentation procedures is difficult to identify the reaction intermediates and the reaction paths, whereas the theoretical investigations are still in development.udThese facts encourage both experimental and theoretical investigations to understand completely the ethanol reaction process in the DEFCs. Currently, the most commonly investigated catalytic surfaces are Pt-Ru, Pt-Sn, and Pt-Ru-Sn mixtures and some catalytic mixtures that contain nickel, Pt-Ru-Ni and Pt-Sn-Ni. Nevertheless the experimental studies cannot elucidate entirely the reaction intermediates and reaction paths. So to date there are not known satisfactory explanations of the catalytic processes existent in the ethanol adsorption and decomposition processes on different catalytic surfaces. Because of this, theudtheoretical investigation could help to elucidate the complex reaction mechanism involved in the ethanol reaction in the DEFCs. Considering this, it is carried out in this work the study of the initial steps of the ethanol reaction mechanism on a Pt-Sn catalytic surface.udSpecifically the potential energy surface (PES) of the adsorption and dehydrogenation steps of ethanol decomposition on a specific catalytic surface (Pt3Sn1 in atomic ratio) is investigated in this work, using self-consistent periodic slab calculations based on density functional theory. This research reveals that ethanol does not have an unique mode of adsorption on this catalytic surface, as well as the dehydrogenation pathway does not only proceed via the ethoxy species formation, but also via the 2-hydroxyethyl species formation. Additionally it is showed that acetaldehyde desorbs in the process of dehydrogenation of ethanol. These results allow to understand in detail the first steps of the ethanol oxidation on a specific catalytic surface, which constitutes a contribution to clarify the problem of selectivity in catalysts for DEFCs.ud
机译:直接乙醇燃料电池(DEFC)的开发对于获得替代能源转换器很重要。在此目标内,有一个有趣的话题被认为是这些设备开发的基础:DEFC阳极中的乙醇反应机理。一些小组已经研究了这一过程,但是要完全了解乙醇反应机理仍然有许多困难。使用实验程序很难确定反应中间体和反应路径,而理论研究仍在发展中。 ud这些事实鼓励实验和理论研究完全了解DEFC中的乙醇反应过程。当前,最常研究的催化表面是Pt-Ru,Pt-Sn和Pt-Ru-Sn混合物以及一些含有镍,Pt-Ru-Ni和Pt-Sn-Ni的催化混合物。然而,实验研究不能完全阐明反应中间体和反应路径。因此,迄今为止,还没有令人满意的解释说明乙醇在不同催化表面上的吸附和分解过程中存在的催化过程。因此,的理论研究可以帮助阐明DEFC中乙醇反应涉及的复杂反应机理。考虑到这一点,在这项工作中对乙醇在Pt-Sn催化表面上的反应机理的初始步骤进行了研究。 ud特别是乙醇在特定条件下分解的吸附和脱氢步骤的势能表面(PES)在这项工作中,使用基于密度泛函理论的自洽周期平板计算来研究催化表面(原子比为Pt3Sn1)。这项研究表明,乙醇在这种催化表面上没有独特的吸附方式,而且脱氢途径不仅通过乙氧基物质的形成,而且通过2-羟乙基物质的形成进行。另外显示乙醛在乙醇脱氢过程中解吸。这些结果使得可以详细了解特定催化表面上乙醇氧化的第一步,这有助于阐明DEFC催化剂中的选择性问题。

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  • 年度 2011
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  • 正文语种 {"code":"en","name":"English","id":9}
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