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首页> 外文期刊>Applied Surface Science >Oxygen reduction reaction (orr) on bimetallic AuPt and AuPd(100)-electrodes: Effects of the heteroatomic junction on the reaction paths
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Oxygen reduction reaction (orr) on bimetallic AuPt and AuPd(100)-electrodes: Effects of the heteroatomic junction on the reaction paths

机译:双金属AuPt和AuPd(100)电极上的氧还原反应(orr):杂原子结对反应路径的影响

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摘要

The seek for materials to enhance the oxygen reduction reaction (orr) rate is a highly relevant topic due to its implication in fuel cell devices. Herein, the orr on bimetallic electrocatalysts based on Au-M (M = Pt, Pd) has been studied computationally, by performing density functional theory calculations. Bimetallic (100) electrode surfaces with two different Au:M ratios were proposed, and two possible pathways, associative and dissociative, were considered for the orr. Changes in the electronic properties of these materials with respect to the pure metals were acknowledged to gain understanding in the overall reactivity trend. The effect of the bimetallic junction on the stability of the intermediates O-2 and OOH was also evaluated by means of geometrical and energetic parameters; being the intermediates preferably adsorbed on Pt/Pd atoms, but presenting in some cases higher adsorption energies compared with bare metals. Finally, the kinetics of the O-O bond breaking in O*(2) and OOH* adsorbed intermediates in the bimetallic materials and the influence of the Au-M junction were studied by means of the nudge elastic-band method. A barrierless process for the scission of O-2 was found in Au-M for the higher M ratios. Surprisingly, for Au-M with lower M ratios, the barriers were much lower than for pure Au surfaces, suggesting a highly reactive surface towards the orr. The O-O scission of the OOH* was found to be a barrierless process in Au Pt systems and nearly barrierless in all Au-Pd systems, implying that the reduction of O-2 in these systems proceeds via the full reduction of O-2 to H2O, avoiding H2O2 formation. (C) 2018 Elsevier B.V. All rights reserved.
机译:寻求提高氧还原反应(orr)速率的材料是高度相关的主题,因为它涉及燃料电池装置。在本文中,通过执行密度泛函理论计算,对基于Au-M(M = Pt,Pd)的双金属电催化剂上的orr进行了计算研究。提出了具有两个不同Au / M比的双金属(100)电极表面,并考虑了orr的两个可能途径,即缔合和解离。公认这些材料相对于纯金属的电子性质发生了变化,以了解整体反应性趋势。还通过几何和能量参数评估了双金属结对中间体O-2和OOH稳定性的影响。作为优选的中间体,其是优选吸附在Pt / Pd原子上的中间体,但是在某些情况下,与裸金属相比具有更高的吸附能。最后,通过微带弹性带法研究了双金属材料中O *(2)和OOH *吸附中间体中O-O键断裂的动力学以及Au-M结的影响。对于较高的M比率,在Au-M中发现了O-2分裂的无障碍过程。出人意料的是,对于具有较低M比率的Au-M,其势垒远低于纯Au表面的势垒,这表明朝向orr的表面具有高反应性。在Ou Pt系统中发现OOH *的OO分裂是无障碍过程,在所有Au-Pd系统中几乎都是无障碍过程,这意味着这些系统中O-2的还原是通过将O-2完全还原为H2O来进行的,避免形成H2O2。 (C)2018 Elsevier B.V.保留所有权利。

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