Physical Chemistry Chemical Physics, volume 24, issue 38, pages 23182-23194
Hydrogenation of CO2 to methanol over In-doped m-ZrO2: a DFT investigation into the oxygen vacancy size-dependent reaction mechanism
Publication type: Journal Article
Publication date: 2022-09-06
Journal:
Physical Chemistry Chemical Physics
Quartile SCImago
Q1
Quartile WOS
Q2
Impact factor: 3.3
ISSN: 14639076, 14639084
Physical and Theoretical Chemistry
General Physics and Astronomy
Abstract
Selective methanol synthesis via CO2 hydrogenation has been thoroughly investigated over defective In-doped m-ZrO2 using density functional theory (DFT). Three types of oxygen vacancies (Ovs) generated either at the top layer (O1_v and O4_v) or at the subsurface layer (O2_v) are chosen as surface models due to low Ov formation energy. Surface morphology reveals that O1_v has smaller oxygen vacancy size than O4_v. Compared with perfect In@m-ZrO2, indium on both O1_v and O4_v is partially reduced, whereas the Bader charge of In on O2_v remains almost the same. Our calculations show that CO2 is moderate in adsorption energy (∼-0.8 eV) for all investigated surface models, which facilitates the formate pathway for both O1_v and O4_v. O2_v is not directly involved in CO2 methanolization but could readily transform into O1_v once CO2/H2 feed gas is introduced. Based on the results, the synthesis of methanol from CO2 hydrogenation turns out to exhibit conspicuous vacancy size-dependency for both O1_v and O4_v. The reaction mechanism for small-sized O1_v is controlled by both the vacancy size effect and surface reducibility effect. Thus, H2COO* favors direct C-O bond cleavage (c-mechanism) before further hydrogenation to methanol, which is similar to the defective In2O3. The vacancy size effect is more competitive than the surface reducibility effect for large-sized O4_v. Therefore, H2COO* prefers protonation to H2COOH before C-O bond cleavage (p-mechanism) which is similar to the ZnO-ZrO2 solid solution. Furthermore, we also determined that stable-CH3O*, which is too stable to be hydrogenated, originates from the O1_v surface. In contrast, CH3O* with similar configuration is allowed to be further converted to methanol on O4_v. Overall, our findings offer a new perspective towards how reaction mechanisms are determined by the size of oxygen vacancies.
Top-30
Journals
1
2
|
|
Molecular Catalysis
2 publications, 25%
|
|
ACS Catalysis
2 publications, 25%
|
|
Chemical Engineering Journal
1 publication, 12.5%
|
|
Journal of Chemical Physics
1 publication, 12.5%
|
|
Russian Chemical Reviews
1 publication, 12.5%
|
|
ChemCatChem
1 publication, 12.5%
|
|
1
2
|
Publishers
1
2
3
|
|
Elsevier
3 publications, 37.5%
|
|
American Chemical Society (ACS)
2 publications, 25%
|
|
AIP Publishing
1 publication, 12.5%
|
|
Autonomous Non-profit Organization Editorial Board of the journal Uspekhi Khimii
1 publication, 12.5%
|
|
Wiley
1 publication, 12.5%
|
|
1
2
3
|
- We do not take into account publications without a DOI.
- Statistics recalculated only for publications connected to researchers, organizations and labs registered on the platform.
- Statistics recalculated weekly.
Are you a researcher?
Create a profile to get free access to personal recommendations for colleagues and new articles.
Metrics
Cite this
GOST |
RIS |
BibTex |
MLA
Cite this
GOST
Copy
Yu J. et al. Hydrogenation of CO2 to methanol over In-doped m-ZrO2: a DFT investigation into the oxygen vacancy size-dependent reaction mechanism // Physical Chemistry Chemical Physics. 2022. Vol. 24. No. 38. pp. 23182-23194.
GOST all authors (up to 50)
Copy
Yu J., Zeng Y., Lin W., Lu X. Hydrogenation of CO2 to methanol over In-doped m-ZrO2: a DFT investigation into the oxygen vacancy size-dependent reaction mechanism // Physical Chemistry Chemical Physics. 2022. Vol. 24. No. 38. pp. 23182-23194.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1039/d2cp02788g
UR - https://doi.org/10.1039/d2cp02788g
TI - Hydrogenation of CO2 to methanol over In-doped m-ZrO2: a DFT investigation into the oxygen vacancy size-dependent reaction mechanism
T2 - Physical Chemistry Chemical Physics
AU - Yu, Jie
AU - Zeng, Yabing
AU - Lin, Wei
AU - Lu, Xin
PY - 2022
DA - 2022/09/06
PB - Royal Society of Chemistry (RSC)
SP - 23182-23194
IS - 38
VL - 24
SN - 1463-9076
SN - 1463-9084
ER -
Cite this
BibTex
Copy
@article{2022_Yu,
author = {Jie Yu and Yabing Zeng and Wei Lin and Xin Lu},
title = {Hydrogenation of CO2 to methanol over In-doped m-ZrO2: a DFT investigation into the oxygen vacancy size-dependent reaction mechanism},
journal = {Physical Chemistry Chemical Physics},
year = {2022},
volume = {24},
publisher = {Royal Society of Chemistry (RSC)},
month = {sep},
url = {https://doi.org/10.1039/d2cp02788g},
number = {38},
pages = {23182--23194},
doi = {10.1039/d2cp02788g}
}
Cite this
MLA
Copy
Yu., Jie, et al. “Hydrogenation of CO2 to methanol over In-doped m-ZrO2: a DFT investigation into the oxygen vacancy size-dependent reaction mechanism.” Physical Chemistry Chemical Physics, vol. 24, no. 38, Sep. 2022, pp. 23182-23194. https://doi.org/10.1039/d2cp02788g.