Mechanistic investigation of CO2 hydrogenation to methanol on W-doped Cu surfaces

被引:2
作者
Khodabandeh, Hamideh [1 ]
Pour, Ali Nakhaei [1 ]
Mohammadi, Ali [1 ]
机构
[1] Ferdowsi Univ Mashhad, Fac Sci, Dept Chem, Mashhad 9177948974, Iran
关键词
CO2; hydrogenation; Density functional theory; Mechanism; Methanol; AB-INITIO; CATALYSTS; CU(111); DECOMPOSITION; SELECTIVITY; ADSORPTION; REDUCTION; INSIGHTS; CU/ZNO; GA;
D O I
10.1016/j.jcou.2024.102997
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Density functional theory (DFT) computations were applied to study the adsorption of intermediates, the thermodynamic and kinetic mechanism of the conversion of CO2 to methanol upon the W-doped Cu surface, and the effect of W-doping on the decomposition and selectivity of methanol. For this reason, the adsorption structures and energies for the most stable structures were calculated. The outcomes displayed that the adsorption of intermediates over the surface of Cu-W is more powerful than the surface of Cu due to strain and ligand effect. Two reaction pathways of methanol synthesis (formate and carboxyl routs) were studied. The transition situation configurations and the potential energy profiles associated with each primary stage upon the surfaces of Cu (111) and Cu-W (111) were explored. The relevant activation barrier, rate constant, reaction energy, and Gibbs free energy for each primary stage were computed and the rate-limiting stages were determined. The Br & oslash;nsted-EvansPolanyi (BEP) relationships were used to study which pathway of conversion of CO2 to methanol is better. The outcomes indicated that W weakens the performance of the catalyst and the carboxyl route is more suitable than the formate route due to the low activation barrier for most of its primary stages. Also, the outcomes indicated that W-doping increased the methanol decomposition and reduced the selectivity of methanol.
引用
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页数:14
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共 61 条
[21]   Catalysis of material surface defects: Multiscale modeling of methanol synthesis by CO2 reduction on copper [J].
Kopac, Drejc ;
Likozar, Blaz ;
Hus, Matej .
APPLIED SURFACE SCIENCE, 2019, 497
[22]   Hydrogenation of CO2 to methanol and CO on Cu/ZnO/Al2O3: Is there a common intermediate or not? [J].
Kunkes, Edward L. ;
Studt, Felix ;
Abild-Pedersen, Frank ;
Schloegl, Robert ;
Behrens, Malte .
JOURNAL OF CATALYSIS, 2015, 328 :43-48
[23]   CO2-to-Methanol Hydrogenation on Zirconia-Supported Copper Nanoparticles: Reaction Intermediates and the Role of the Metal-Support Interface [J].
Larmier, Kim ;
Liao, Wei-Chih ;
Tada, Shohei ;
Lam, Erwin ;
Verel, Rene ;
Bansode, Atul ;
Urakawa, Atsushi ;
Comas-Vives, Aleix ;
Coperet, Christophe .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (09) :2318-2323
[24]   CO2 Hydrogenation to Methanol over ZrO2-Containing Catalysts: Insights into ZrO2 Induced Synergy [J].
Li, Kongzhai ;
Chen, Jingguang G. .
ACS CATALYSIS, 2019, 9 (09) :7840-7861
[25]   Hydrogenation of CO2 to methanol over Cu/AlCeO catalyst [J].
Li, Shaozhong ;
Guo, Limin ;
Ishihara, Tatsumi .
CATALYSIS TODAY, 2020, 339 :352-361
[26]   Cocatalysts for Selective Photoreduction of CO2 into Solar Fuels [J].
Li, Xin ;
Yu, Jiaguo ;
Jaroniec, Mietek ;
Chen, Xiaobo .
CHEMICAL REVIEWS, 2019, 119 (06) :3962-4179
[27]   Heterogeneous catalytic conversion of CO2: a comprehensive theoretical review [J].
Li, Yawei ;
Chan, Siew Hwa ;
Sun, Qiang .
NANOSCALE, 2015, 7 (19) :8663-8683
[28]   Role of surface reconstruction on Cu/TiO2 nanotubes for CO2 conversion [J].
Liu, Chao ;
Nauert, Scott L. ;
Alsina, Marco A. ;
Wang, Dingdi ;
Grant, Alexander ;
He, Kai ;
Weitz, Eric ;
Nolan, Michael ;
Gray, Kimberly A. ;
Notestein, Justin M. .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2019, 255
[29]   DFT investigation of CO2 hydrogenation to methanol over Ir-doped Cu surface [J].
Liu, Lingna ;
Wang, Chao ;
Xue, Fan ;
Li, Jiawei ;
Zhang, Hui ;
Lu, Shuwei ;
Su, Xuanyue ;
Cao, Baowei ;
Huo, Wenlan ;
Fang, Tao .
MOLECULAR CATALYSIS, 2022, 528
[30]   Mechanistic study of methanol synthesis from CO2 hydrogenation on Rh-doped Cu(111) surfaces [J].
Liu, Lingna ;
Fan, Fei ;
Bai, Miaomiao ;
Xue, Fan ;
Ma, Xiangrong ;
Jiang, Zhao ;
Fang, Tao .
MOLECULAR CATALYSIS, 2019, 466 :26-36