Title of article :
Microkinetics of steam methane reforming on platinum and rhodium metal surfaces
Author/Authors :
Tianwei Zhu، نويسنده , , Pieter W. van Grootel، نويسنده , , Ivo A.W. Filot، نويسنده , , Shi-Gang Sun، نويسنده , , Rutger A. van Santen، نويسنده , , Emiel J.M. Hensen، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2013
Pages :
9
From page :
227
To page :
235
Abstract :
We have investigated the most important elementary reaction steps in the steam methane reforming (SMR) process for planar and stepped Pt surfaces (dissociative CH4 adsorption, CHads–Oads recombination, H2O activation) and compared activation barriers for Rh surfaces. Compared to Rh, the lower reactivity of Pt results in (i) higher barriers for dissociative CH4 adsorption and (ii) endothermic formation of OHads and Oads. Microkinetic simulations show that Rh nanoparticle catalysts will be more active than Pt ones. The rate-controlling step is dissociative CH4 adsorption occurring on low-coordinated surface atoms (edges, corners, step-edges). The stepped surfaces are much more reactive than planar surfaces of the corresponding metals. For stepped Pt surfaces, CO formation via recombination of Cads + OHads is favored because of the low Oads coverage. At higher temperatures, deactivation may occur due to poisoning by carbonaceous species because the rate of OHads/Oads formation becomes too low compared to the rate of CHads formation. This occurs at lower temperature for Pt than for Rh because of the lower Pt–O bond energy.
Keywords :
Fischer–Tropsch synthesis , Density functional theory , CO insertion mechanism , Stability diagram for adsorbed CO , Coverage effects , Reaction path analysis
Journal title :
Journal of Catalysis
Serial Year :
2013
Journal title :
Journal of Catalysis
Record number :
1223936
Link To Document :
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