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Synergistic electrocatalytic effect of Pd and Rh nanoislands co-deposited on Au(poly) on HER in alkaline solution

机译:碱性溶液中共沉积在Au(poly)上的Pd和Rh纳米岛对HER的协同电催化作用

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Hydrogen evolution reaction (HER) was explored on tri-metallic Rh@Pd/Au(poly) and bimetallic Pd/Au(poly) and Rh/Au(poly) electrodes in alkaline solution. Electrodes were prepared by the spontaneous deposition of either Pd or Rh and by co-deposition of both Rh and Pd on polycrystalline gold electrode. Characterization of modified electrodes was performed by cyclic voltammetry in alkaline solution, while additional information about phase analysis, chemical composition and surface morphology of tai-metallic Rh@Pd/Au(poly) electrode were acquired using X-ray diffraction, X-ray photoelectron spectroscopy, field emission scanning electron microscopy and atomic force microscopy. Investigations of HER catalysis have shown that the activity of tri-metallic Rh Pd/Au(poly) electrode exceeds the activities of both Pd/Au(poly) and Rh/Au(poly) electrodes, meaning that the synergism between co-deposited Pd and Rh islands is achieved. Moreover, Rh@Pd/Au(poly) electrode showed significant approach to the activities of bulk Pd and Rh electrodes for HER, especially when taking into account low activity of bare Au substrate. Synergistic effect of co-deposited Pd and Rh islands is a consequence of the strong electronic interaction between three metals in a close contact, which promotes the activity for HER by lowering the adsorption energy of Hads intermediate. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在碱性溶液中,在三金属Rh @ Pd / Au(poly)电极和双金属Pd / Au(poly)和Rh / Au(poly)电极上探索了析氢反应(HER)。通过自发沉积Pd或Rh以及在多晶金电极上共沉积Rh和Pd来制备电极。在碱性溶液中通过循环伏安法进行修饰电极的表征,同时使用X射线衍射,X射线光电子获得有关金属钛Rh / Pd / Au(poly)电极的相分析,化学组成和表面形态的其他信息光谱学,场发射扫描电子显微镜和原子力显微镜。 HER催化研究表明,三金属Rh Pd / Au(poly)电极的活性超过了Pd / Au(poly)和Rh / Au(poly)电极的活性,这意味着共沉积Pd之间的协同作用并实现了Rh岛。此外,Rh @ Pd / Au(poly)电极对HER的Pd和Rh体电极的活性表现出显着的作用,特别是考虑到裸露的Au衬底的低活性时。共沉积的Pd和Rh岛的协同效应是紧密接触的三种金属之间强电子相互作用的结果,它通过降低Hads中间体的吸附能来促进HER的活性。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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