Literature DB >> 19994897

Gold, copper, and platinum nanoparticles dispersed on CeO(x)/TiO(2)(110) surfaces: high water-gas shift activity and the nature of the mixed-metal oxide at the nanometer level.

Joon B Park1, Jesus Graciani, Jaime Evans, Dario Stacchiola, Sanjaya D Senanayake, Laura Barrio, Ping Liu, Javier Fdez Sanz, Jan Hrbek, José A Rodriguez.   

Abstract

At small coverages of ceria on TiO(2)(110), the CeO(x) nanoparticles have an unusual coordination mode. Scanning tunneling microscopy and density-functional calculations point to the presence of Ce(2)O(3) dimers, which form diagonal arrays that have specific orientations of 0, 24, and 42 degrees with respect to the [1 -1 0] direction of the titania substrate. At high coverages of ceria on TiO(2)(110), the surface exhibits two types of terraces. In one type, the morphology is not very different from that observed at low ceria coverage. However, in the second type of terrace, there is a compact array of ceria particles with structures that do not match the structures of CeO(2)(111) or CeO(2)(110). The titania substrate imposes on the ceria nanoparticles nontypical coordination modes, enhancing their chemical reactivity. This phenomenon leads to a larger dispersion of supported metal nanoparticles (M = Au, Cu, Pt) and makes possible the direct participation of the oxide in catalytic reactions. The M/CeO(x)/TiO(2)(110) surfaces display an extremely high catalytic activity for the water-gas shift reaction that follows the sequence Au/CeO(x)/TiO(2)(110) < Cu/CeO(x)/TiO(2)(110) < Pt/CeO(x)/TiO(2)(110). For low coverages of Cu and CeO(x), Cu/CeO(x)/TiO(2)(110) is 8-12 times more active than Cu(111) or Cu/ZnO industrial catalysts. In the M/CeO(x)/TiO(2)(110) systems, there is a strong coupling of the chemical properties of the admetal and the mixed-metal oxide: The adsorption and dissociation of water probably take place on the oxide, CO adsorbs on the admetal nanoparticles, and all subsequent reaction steps occur at the oxide-admetal interface. The high catalytic activity of the M/CeO(x)/TiO(2)(110) surfaces reflects the unique properties of the mixed-metal oxide at the nanometer level.

Entities:  

Year:  2010        PMID: 19994897     DOI: 10.1021/ja9087677

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  4 in total

1.  Metal/oxide interfacial effects on the selective oxidation of primary alcohols.

Authors:  Guofeng Zhao; Fan Yang; Zongjia Chen; Qingfei Liu; Yongjun Ji; Yi Zhang; Zhiqiang Niu; Junjie Mao; Xinhe Bao; Peijun Hu; Yadong Li
Journal:  Nat Commun       Date:  2017-01-18       Impact factor: 14.919

2.  Synthesis and CO Oxidation Activity of 1D Mixed Binary Oxide CeO2-LaO x Supported Gold Catalysts.

Authors:  Huanhuan Yu; Siyuan Zhong; Baolin Zhu; Weiping Huang; Shoumin Zhang
Journal:  Nanoscale Res Lett       Date:  2017-11-02       Impact factor: 4.703

3.  CO2 Hydrogenation over Nanoceria-Supported Transition Metal Catalysts: Role of Ceria Morphology (Nanorods versus Nanocubes) and Active Phase Nature (Co versus Cu).

Authors:  Michalis Konsolakis; Maria Lykaki; Sofia Stefa; Sόnia A C Carabineiro; Georgios Varvoutis; Eleni Papista; Georgios E Marnellos
Journal:  Nanomaterials (Basel)       Date:  2019-12-06       Impact factor: 5.076

4.  The effect of carbon monoxide Co-adsorption on Ni-catalysed water dissociation.

Authors:  Abas Mohsenzadeh; Anders Borjesson; Jeng-Han Wang; Tobias Richards; Kim Bolton
Journal:  Int J Mol Sci       Date:  2013-11-26       Impact factor: 5.923

  4 in total

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