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Optimizing Fe-based catalysts for CO2 hydrogenation using combined theoretical predictions and experimental insights
  • Han, Seung Ju ;
  • Chen, Jingyu ;
  • Park, Hae Gu ;
  • Jun, Ki Won ;
  • Kim, Seok Ki
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Publication Year
2025-03-15
Journal
Chemical Engineering Journal
Publisher
Elsevier B.V.
Citation
Chemical Engineering Journal, Vol.508
Keyword
Carbon dioxideDensity functional theoryFirst principles microkinetic modelingIron catalyst
Mesh Keyword
Active phasisDensity-functional-theoryFe-based catalystsFirst principle microkinetic modelingFirst principlesFischer TropschIron catalystMicrokinetic modelingTropsch synthesis]+ catalyst
All Science Classification Codes (ASJC)
Chemistry (all)Environmental ChemistryChemical Engineering (all)Industrial and Manufacturing Engineering
Abstract
Hydrogenation of CO2 to liquid fuel is a crucial technology for e-fuel synthesis in carbon capture, utilization, and storage (CCUS) processes. Designing an efficient catalyst for CO2 direct hydrogenation requires a comprehensive understanding of the active phases and reaction mechanisms. However, the complexity of active phases in Fe-based catalysts and reaction intermediates in CO2 hydrogenation pose challenges in computational approaches. Herein, we identified the active phase of Fe catalysts for CO2 hydrogenation using density functional theory (DFT) calculations. Based on the scaling relations, we constructed descriptor-based micro-kinetic models for CO2-Fischer-Tropsch synthesis (CO2-FTS) and CO-Fischer-Tropsch synthesis (CO-FTS). The derived volcano plot suggested that Fe-Fe3C surfaces are efficient in both the reverse water–gas shift (RWGS) reaction and Fischer-Tropsch synthesis (FTS). Based on the microkinetic model, 16 alloy surfaces were evaluated, suggesting Cu and Mn as promising promoter candidates. The experimental analysis of Fe-Me-K/AC catalysts (Me = W, Zn, Ni, Co, Cu, Mn, B) revealed that carbidic phase composition was mainly governed by the vacancy formation energy of Me-Fe5C2. In catalytic activity tests, Fe-Cu-K/AC catalyst with a high composition of Fe and Fe3C, exhibited the highest C5+ hydrocarbon yield (18.3 %) among the catalysts. This implies that the promoter's effect on the phase composition is more significant than its impact on intrinsic activity. The proposed microkinetic model and promoter screening approach provides insights into catalyst design for CO2 hydrogenation.
Language
eng
URI
https://aurora.ajou.ac.kr/handle/2018.oak/38518
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85218904218&origin=inward
DOI
https://doi.org/10.1016/j.cej.2025.161006
Journal URL
https://www.sciencedirect.com/science/journal/13858947
Type
Article
Funding
This work was supported by the \u2018Carbon Upcycling Project for Platform Chemicals\u2019 (Projects no. 2022M3J3A1046021, 2022M3J3A1045999) through the National Research Foundation of Korea (NRF) funded by the Ministry of Science and Information and Communication Technologies (ICT), and the Ministry of Trade, Industry & Energy (grant no. 20224C10300010 and RS-2024-00432109). S.K.K. also acknowledge to the Global Learning & Academic research institution for Master's\u00B7PhD students, and Postdocs (G-LAMP) Program of the NRF grant funded by the Ministry of Education (No. RS-2023-00285390).
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