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镍(110)表面的水离解与羟基形成

Water Dissociation and Hydroxyl Formation on Ni(110).

作者信息

Gerrard Nikki, Mistry Kallum, Darling George R, Hodgson Andrew

机构信息

Surface Science Research Centre and Department of Chemistry, University of Liverpool, Liverpool L69 3BX, U.K.

出版信息

J Phys Chem C Nanomater Interfaces. 2020 Oct 29;124(43):23815-23822. doi: 10.1021/acs.jpcc.0c08708. Epub 2020 Oct 15.

Abstract

Nickel is an active catalyst for hydrogenation and re-forming reactions, with the reactions showing a strong dependence on the surface exposed. Here, we describe the mixed hydroxyl-water phases formed during water dissociation on Ni(110) using scanning tunneling microscopy and low-current low-energy electron diffraction. Water dissociation starts between 150 and 180 K as the H-bond structure evolves from linear one-dimensional (1D) chains of intact water into a two-dimensional (2D) network containing short rows of face-sharing hexagonal rings. As further water desorbs, the hexagonal rows adopt a local (2 × 3) arrangement, forming small, disordered domains separated by strain relief features. Decomposition of this phase occurs near 220 K to form linear 1D structures consisting of flat, zigzag water chains, with each water stabilized by donating one H to hydroxyl to form a branched chain structure. The OH-HO chains repel each other, with the saturation layer ordering into a (2 0, 1 4) structure that decomposes to OH near 245 K as further water desorbs. The structure of the mixed OH/HO phases is discussed and contrasted with those found on the related Cu(110) surface, with the differences attributed to strain in the 2D H-bond network caused by the short Ni lattice spacing and strong bond to OH/HO.

摘要

镍是氢化和重整反应的活性催化剂,这些反应对所暴露的表面表现出强烈的依赖性。在此,我们使用扫描隧道显微镜和低电流低能电子衍射描述了在Ni(110)上水离解过程中形成的混合羟基-水相。随着氢键结构从完整水的线性一维(1D)链演变为包含短排面共享六元环的二维(2D)网络,水离解在150至180 K之间开始。随着更多的水脱附,六元排采用局部(2×3)排列,形成由应变释放特征分隔的小的无序畴。该相在220 K附近发生分解,形成由扁平之字形水链组成的线性1D结构,每个水通过向羟基提供一个H而稳定,形成支链结构。OH-HO链相互排斥,饱和层有序排列成(2 0,1 4)结构,随着更多的水脱附,该结构在245 K附近分解为OH。讨论了混合OH/HO相的结构,并与在相关Cu(110)表面上发现的结构进行了对比,差异归因于由短的Ni晶格间距和与OH/HO的强键合导致的二维氢键网络中的应变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d24e/7604940/389d4349e8c9/jp0c08708_0002.jpg

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