Literature DB >> 24794852

Atomic-structural synergy for catalytic CO oxidation over palladium-nickel nanoalloys.

Shiyao Shan1, Valeri Petkov, Lefu Yang, Jin Luo, Pharrah Joseph, Dina Mayzel, Binay Prasai, Lingyan Wang, Mark Engelhard, Chuan-Jian Zhong.   

Abstract

Alloying palladium (Pd) with other transition metals at the nanoscale has become an important pathway for preparation of low-cost, highly active and stable catalysts. However, the lack of understanding of how the alloying phase state, chemical composition and atomic-scale structure of the alloys at the nanoscale influence their catalytic activity impedes the rational design of Pd-nanoalloy catalysts. This work addresses this challenge by a novel approach to investigating the catalytic oxidation of carbon monoxide (CO) over palladium-nickel (PdNi) nanoalloys with well-defined bimetallic composition, which reveals a remarkable maximal catalytic activity at Pd:Ni ratio of ~50:50. Key to understanding the structural-catalytic synergy is the use of high-energy synchrotron X-ray diffraction coupled to atomic pair distribution function (HE-XRD/PDF) analysis to probe the atomic structure of PdNi nanoalloys under controlled thermochemical treatments and CO reaction conditions. Three-dimensional (3D) models of the atomic structure of the nanoalloy particles were generated by reverse Monte Carlo simulations (RMC) guided by the experimental HE-XRD/PDF data. Structural details of the PdNi nanoalloys were extracted from the respective 3D models and compared with the measured catalytic properties. The comparison revealed a strong correlation between the phase state, chemical composition and atomic-scale structure of PdNi nanoalloys and their catalytic activity for CO oxidation. This correlation is further substantiated by analyzing the first atomic neighbor distances and coordination numbers inside the nanoalloy particles and at their surfaces. These findings have provided new insights into the structural synergy of nanoalloy catalysts by controlling the phase state, composition and atomic structure, complementing findings of traditional density functional theory studies.

Entities:  

Year:  2014        PMID: 24794852     DOI: 10.1021/ja5026744

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


  2 in total

1.  NiCo nanoalloy encapsulated in graphene layers for improving hydrogen storage properties of LiAlH4.

Authors:  Chengli Jiao; Lixian Sun; Fen Xu; Shu-Sheng Liu; Jian Zhang; Xia Jiang; Lini Yang
Journal:  Sci Rep       Date:  2016-06-07       Impact factor: 4.379

2.  Ni-Supported Pd Nanoparticles with Ca Promoter: A New Catalyst for Low-Temperature Ammonia Cracking.

Authors:  Jaroslaw Polanski; Piotr Bartczak; Weronika Ambrozkiewicz; Rafal Sitko; Tomasz Siudyga; Andrzej Mianowski; Jacek Szade; Katarzyna Balin; Józef Lelątko
Journal:  PLoS One       Date:  2015-08-26       Impact factor: 3.240

  2 in total

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