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Trends and outlook of computational chemistry and microkinetic modeling for catalytic synthesis of methanol and DMEoa mark
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Publication Year
2020-06-01
Publisher
MDPI
Citation
Catalysts, Vol.10, pp.1-22
Keyword
Computational chemistryDME synthesisMethanol synthesisMicrokinetic modeling
All Science Classification Codes (ASJC)
CatalysisEnvironmental Science (all)Physical and Theoretical Chemistry
Abstract
The first-principle modeling of heterogeneous catalysts is a revolutionarily approach, as the electronic structure of a catalyst is closely related to its reactivity on the surface with reactant molecules. In the past, detailed reaction mechanisms could not be understood, however, computational chemistry has made it possible to analyze a specific elementary reaction of a reaction system. Microkinetic modeling is a powerful tool for investigating elementary reactions and reaction mechanisms for kinetics. Using a microkinetic model, the dominant pathways and rate-determining steps can be elucidated among the competitive reactions, and the effects of operating conditions on the reaction mechanisms can be determined. Therefore, the combination of computational chemistry and microkinetic modeling can significantly improve computational catalysis research. In this study, we reviewed the trends and outlook of this combination technique as applied to the catalytic synthesis of methanol (MeOH) and dimethyl ether (DME), whose detailed mechanisms are still controversial. Although the scope is limited to the catalytic synthesis of limited species, this study is expected to provide a foundation for future works in the field of catalysis research based on computational catalysis.
ISSN
2073-4344
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/31599
DOI
https://doi.org/10.3390/catal10060655
Fulltext

Type
Review
Funding
Funding: This research was supported by the C1 Gas Refinery Program through the National Research Foundation of Korea (NRF), funded by the Ministry of Science, ICT and Future Planning (No. NRF-2018M3D3A1A01055765) and Human Resources Development of the KETEP grant funded by the Ministry of Trade, Industry and Energy of the Korean Government (No. 20154010200820).
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Park, Myung-June Image
Park, Myung-June박명준
Department of Chemical Engineering
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