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DALIAN UNIVERSITY OF TECHNOLOGY Login 中文
LIU Xin

Associate Professor
Supervisor of Doctorate Candidates
Supervisor of Master's Candidates


Gender:Male
Alma Mater:Dalian University of Technology
Degree:Doctoral Degree
School/Department:School of Chemistry
Discipline:Physical Chemistry (including Chemical Physics). Inorganic Chemistry
Business Address:西部校区化工综合楼C307.
Contact Information:Email: xliu@dlut.edu.cn
E-Mail:xliu@dlut.edu.cn
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Substrate-mediated enhanced activity of Ru nanoparticles in catalytic hydrogenation of benzene

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Indexed by:期刊论文

Date of Publication:2012-04-07

Journal:NANOSCALE

Included Journals:SCIE、EI、PubMed、Scopus

Volume:4

Issue:7

Page Number:2288-2295

ISSN No.:2040-3364

Abstract:The impact of carbon substrate-Ru nanoparticle interactions on benzene and hydrogen adsorption that is directly related to the performance in catalytic hydrogenation of benzene has been investigated by first-principles based calculations. The stability of Ru-13 nanoparticles is enhanced by the defective graphene substrate due to the hybridization between the dsp states of the Ru-13 particle with the sp(2) dangling bonds at the defect sites. The local curvature formed at the interface will also raise the Ru atomic diffusion barrier, and prohibit the particle sintering. The strong interfacial interaction results in the shift of averaged d-band center of the deposited Ru nanoparticle, from -1.41 eV for a freestanding Ru-13 particle, to -1.17 eV for the Ru/Graphene composites, and to -1.54 eV on mesocellular foam carbon. Accordingly, the adsorption energies of benzene are increased from -2.53 eV for the Ru/mesocellular foam carbon composites, to -2.62 eV on freestanding Ru-13 particles, to -2.74 eV on Ru/graphene composites. A similar change in hydrogen adsorption is also observed, and all these can be correlated to the shift of the d-band center of the nanoparticle. Thus, Ru nanoparticles graphene composites are expected to exhibit both high stability and superior catalytic performance in hydrogenation of arenes.