Literature DB >> 25690364

A density functional theory study of hydrocarbon combustion and synthesis on Ni surfaces.

Abas Mohsenzadeh1, Tobias Richards, Kim Bolton.   

Abstract

Combustion and synthesis of hydrocarbons may occur directly (CH → C + H and COC + O) or via a formyl (CHO) intermediate. Density functional theory (DFT) calculations were performed to calculate the activation and reaction energies of these reactions on Ni(111), Ni(110), and Ni(100) surfaces. The results show that the energies are sensitive to the surface structure. The dissociation barrier for methylidyne (CH → C + H: catalytic hydrocarbon combustion) is lower than that for its oxidation reaction (CH + O → CHO) on the Ni(110) and Ni(100) surfaces. However the oxidation barrier is lower than that for dissociation on the Ni(111) surface. The dissociation barrier for methylidyne dissociation decreases in the order Ni(111) > Ni(100) > Ni(110). The barrier of formyl dissociation to CO and H is almost the same on the Ni(111) and Ni(110) surfaces and is lower compared to the Ni(100) surface. The energy barrier for carbon monoxide dissociation (COC + O: catalytic hydrocarbon synthesis) is higher than that of for its hydrogenation reaction (CO + H → CHO) on all three surfaces. This means that the hydrogenation to CHO is favored on these nickel surfaces. The energy barrier for both reactions decreases in the order Ni(111) > Ni(100) > Ni(110). The barrier for formyl dissociation to CH + O decreases in the order Ni(100) > Ni(111) > Ni(110). Based on these DFT calculations, the Ni(110) surface shows a better catalytic activity for hydrocarbon combustion compared to the other surfaces, and Ni is a better catalyst for the combustion reaction than for hydrocarbon synthesis, where the reaction rate constants are small. The reactions studied here support the BEP principles with R(2) values equal to 0.85 for C-H bond breaking/forming and 0.72 for C-O bond breaking /forming reactions.

Entities:  

Year:  2015        PMID: 25690364     DOI: 10.1007/s00894-015-2590-8

Source DB:  PubMed          Journal:  J Mol Model        ISSN: 0948-5023            Impact factor:   1.810


  13 in total

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Authors:  Abas Mohsenzadeh; Anders Borjesson; Jeng-Han Wang; Tobias Richards; Kim Bolton
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  1 in total

1.  DFT studies of hydrocarbon combustion on metal surfaces.

Authors:  Mina Arya; Ali Akbar Mirzaei; Abdol Mahmood Davarpanah; Seyed Masoud Barakati; Hossein Atashi; Abas Mohsenzadeh; Kim Bolton
Journal:  J Mol Model       Date:  2018-02-02       Impact factor: 1.810

  1 in total

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