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Featured researches published by Fanglin Che.


Catalysis Science & Technology | 2014

Decomposition of methyl species on a Ni(211) surface: investigations of the electric field influence

Fanglin Che; Alyssa J. R. Hensley; Su Ha; Jean-Sabin McEwen

Density functional theory calculations are performed to examine how an external electric field can alter the reaction pathways on a stepped Ni(211) surface with regard to the decomposition of methyl species. We compare our results to those previously obtained on a close-packed Ni(111) surface and a bimetallic Au/Ni surface. The structures, adsorption energies, and reaction energy barriers of all methyl species on the Ni(211) surface are identified. The calculated results indicate that the presence of an external electric field not only alters the site preferences for the adsorbates on Ni(211), but also significantly changes the adsorption energies of the CHx species. By comparison with our previous results, this electric field effect is smaller than that on Ni(111). The local electric field value is also found to differ at the various adsorption sites for the CH3 group on Ni(211). From the results, a correlation between the calculated local electric fields, the adsorption energies and effective dipole moments values is investigated. The calculations also show that the stepped surfaces are more reactive for the elementary dissociation reactions of the CHx species as compared to the Ni(111) surface. The final conclusion is that a positive electric field strengthens the adsorption energy of reactant CH3, increases the energy barriers of the decomposition of CHx species and weakens the adsorption energies of C and H. This suggests that the formation of pure C atoms deposits will be impeded by an external positive electric field.


Physical Chemistry Chemical Physics | 2014

Density functional theory studies of methyl dissociation on a Ni(111) surface in the presence of an external electric field

Fanglin Che; Renqin Zhang; Alyssa J. R. Hensley; Su Ha; Jean-Sabin McEwen


Applied Catalysis B-environmental | 2016

Elucidating the field influence on the energetics of the methane steam reforming reaction: A density functional theory study

Fanglin Che; Su Ha; Jean-Sabin McEwen


ACS Catalysis | 2017

Improving Ni Catalysts Using Electric Fields: A DFT and Experimental Study of the Methane Steam Reforming Reaction

Fanglin Che; Jake T. Gray; Su Ha; Jean-Sabin McEwen


Angewandte Chemie | 2017

Catalytic Reaction Rates Controlled by Metal Oxidation State: C−H Bond Cleavage in Methane over Nickel-Based Catalysts

Fanglin Che; Su Ha; Jean-Sabin McEwen


Journal of Catalysis | 2015

Catalytic water dehydrogenation and formation on nickel: Dual path mechanism in high electric fields

Fanglin Che; Jake T. Gray; Su Ha; Jean-Sabin McEwen


Industrial & Engineering Chemistry Research | 2017

Hydrogen Oxidation and Water Dissociation over an Oxygen-Enriched Ni/YSZ Electrode in the Presence of an Electric Field: A First-Principles-Based Microkinetic Model

Fanglin Che; Su Ha; Jean-Sabin McEwen


ACS Catalysis | 2017

Reducing Reaction Temperature, Steam Requirements, and Coke Formation During Methane Steam Reforming Using Electric Fields: A Microkinetic Modeling and Experimental Study

Fanglin Che; Jake T. Gray; Su Ha; Jean-Sabin McEwen


Journal of Physical Chemistry C | 2016

Elucidating the Role of the Electric Field at the Ni/YSZ Electrode: A DFT Study

Fanglin Che; Su Ha; Jean-Sabin McEwen


ACS Catalysis | 2018

Elucidating the Roles of Electric Fields in Catalysis: A Perspective

Fanglin Che; Jake T. Gray; Su Ha; Norbert Kruse; Susannah L. Scott; Jean-Sabin McEwen

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Su Ha

Washington State University

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Jean-Sabin McEwen

Washington State University

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Jean-Sabin McEwen

Washington State University

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Jake T. Gray

Washington State University

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Greg Collinge

Washington State University

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Jacob Bray

Washington State University

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Norbert Kruse

Washington State University

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Renqin Zhang

Washington State University

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