Water dissociation and COOH formation on Fe modified Cu(100) surface: A density functional theory study

被引:0
作者
Hussain, Akhtar [1 ]
Javaid, Saqib [1 ]
机构
[1] Pakistan Inst Nucl Sci & Technol PINSTECH, TPD, PO Nilore, Islamabad, Pakistan
关键词
Water splitting; CO; 2; reduction; Adsorption energy; FeCu(100) surface; DFT; Activation energy; COOH formation; GAS-SHIFT REACTION; TOTAL-ENERGY CALCULATIONS; CATALYSTS; HYDROGEN; OXIDATION; ALLOY; CU;
D O I
10.1016/j.jmgm.2024.108829
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Water splitting has emerged as a promising route for sustainable hydrogen production. In this research paper, adsorption and dissociation of H2O accompanied with dissociated constituents reactions with CO2 and CO have been investigated on Fe modified Cu(100) surface employing density functional theory (DFT) at GGA-PW91 level. The adsorption and other reactions carried out on Fe2-Cu(100) surfaces gave very promising results. The adsorption of H2O on Fe top of this surface occurs yielding Eads -1.73 eV, which highlights a favorable adsorption on the Fe-modified Cu(100) surface. The activation energy for the water splitting reaction is found to be 0.65 eV, suggesting a feasible pathway for hydrogen evolution. The process also accompanies reaction energy of -0.54 eV. Furthermore, the interaction between carbon dioxide (CO2) and the H-atom on the surface lead to the formation of COOH through surmounting an activation barrier of 1.09 eV. The final position of COOH gets further stabilization having exothermicity of -0.43 eV. Another route for COOH formation from CO + OH operates on the Cu(100) part of the surface with a small activation barrier of 0.14 eV through exothermic process of -0.29 eV, however, diffusion of CO and OH from Fe to Cu is energetically expensive. This study signifies the consumption of CO and CO2 in addition to water splitting giving birth to useful products.
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页数:9
相关论文
共 47 条
[1]   CO2 Activation over Catalytic Surfaces [J].
Alvarez, Andrea ;
Borges, Marta ;
Jose Corral-Perez, Juan ;
Giner Olcina, Joan ;
Hu, Lingjun ;
Cornu, Damien ;
Huang, Rui ;
Stoian, Dragos ;
Urakawa, Atsushi .
CHEMPHYSCHEM, 2017, 18 (22) :3135-3141
[2]   The water gas shift reaction: Catalysts and reaction mechanism [J].
Baraj, Erlisa ;
Ciahotny, Karel ;
Hlincik, Tomas .
FUEL, 2021, 288
[3]   Roadmap on solar water splitting: current status and future prospects [J].
Chu, Sheng ;
Li, Wei ;
Yan, Yanfa ;
Hamann, Thomas ;
Shih, Ishiang ;
Wang, Dunwei ;
Mi, Zetian .
NANO FUTURES, 2017, 1 (02)
[4]   Water Dissociation on Bimetallic Surfaces: General Trends [J].
Fajin, Jose L. C. ;
Cordeiro, M. Natalia D. S. ;
Gomes, Jose R. B. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (18) :10120-10128
[5]   Water dissociation at the Au/α-Fe2O3(0001) interface [J].
Fuente, Silvia A. ;
Fortunato, Leandro F. ;
Zubieta, Carolina ;
Ferullo, Ricardo M. ;
Belelli, Patricia G. .
MOLECULAR CATALYSIS, 2018, 446 :10-22
[6]  
Funk JE, 2001, INT J HYDROGEN ENERG, V26, P185, DOI 10.1016/S0360-3199(00)00062-8
[7]   Catalytic Dissociation of Water on the (001), (011), and (111) Surfaces of Violarite, FeNi2S4: A DFT-D2 Study [J].
Haider, Saima ;
Roldan, Alberto ;
de Leeuw, Nora H. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2014, 118 (04) :1958-1967
[8]   Highly efficient high temperature electrolysis [J].
Hauch, Anne ;
Ebbesen, Sune Dalgaard ;
Jensen, Soren Hojgaard ;
Mogensen, Mogens .
JOURNAL OF MATERIALS CHEMISTRY, 2008, 18 (20) :2331-2340
[9]  
Head JD, 1997, INT J QUANTUM CHEM, V65, P827, DOI 10.1002/(SICI)1097-461X(1997)65:5<827::AID-QUA47>3.0.CO
[10]  
2-U