Effective catalysts for hydrogenation of CO2 into lower olefins: A review

被引:5
作者
Okoye-Chine, Chike George [1 ]
Mbuya, Christel Olivier Lenge [2 ]
Shiba, Nothando Cynthia [3 ]
Otun, Kabir Opeyemi [4 ]
机构
[1] Virginia Commonwealth Univ, Coll Engn, Dept Chem & Life Sci Engn, West Hall,601 West Main St, Richmond, VA 23284 USA
[2] Brandenburg Univ Technol Cottbus Senftenberg, Dept Proc & Plant Technol, Cottbus, Germany
[3] Univ South Africa UNISA, Dept Chem Engn, ZA-1710 Johannesburg, South Africa
[4] Univ Tenaga Nas, Inst Sustainable Energy, Kajang, Selangor, Malaysia
来源
CARBON CAPTURE SCIENCE & TECHNOLOGY | 2024年 / 13卷
关键词
Fe-based catalysts; Short-chain olefins; Tandem catalysts; CO2; adsorption; hydrogenation; CARBON-DIOXIDE HYDROGENATION; HIGHLY SELECTIVE CONVERSION; FISCHER-TROPSCH SYNTHESIS; VALUE-ADDED PRODUCTS; FE-BASED CATALYSTS; LIGHT OLEFINS; IRON CATALYST; HIGHER HYDROCARBONS; TANDEM CATALYSTS; MN PROMOTER;
D O I
10.1016/j.ccst.2024.100251
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Utilizing CO2 2 as a carbon source to produce high-value compounds, such as light olefins, is one of the most promising approaches to mitigate CO2 2 emissions. Efficient catalysts are critical for optimizing selectivity and yield of light olefins, which is necessary to make the CO2-to-light 2-to-light olefin process economically viable. Therefore, this review focused on various Fe-based catalysts and multifunctional catalysts containing zeolite used for producing short-chain olefins via CO2 2 hydrogenation. There are currently two main strategies to hydrogenate CO2 2 into light olefins in a single step: the CO2 2 - FTS route and the MeOH-mediated route. The primary objective of the CO2 2FT approach is to selectively produce the necessary C2 2 -C4 4 olefins, with a focus on the coordination of active metals, promoters, and supports to adjust the surface H/C ratio, which is crucial for the formation of C2 2 -C4 4 olefins. However, obtaining a high productivity of C2 2 -C4 4 olefins from CO2 2 hydrogenation requires a significant improvement in activity with inhibiting secondary reactions. Currently, tandem catalysts containing SAPO-34 are currently favoured for the higher production of short-chain olefins from the hydrogenation of CO2, 2 , owing to their high oxygen vacancies, zeolite topology, and zeolite acidity. Specifically, In2O3 2 O 3-based formulations are sufficiently promising to get past the drawbacks of traditional iron catalysts. Tandem catalysts with metal oxide In2O3 2 O 3 /ZrO2 2 and SAPO-34 components demonstrated promising results in reducing CO product poisoning. This article describes the latest progress, challenges, and prospects for research concerning CO2 2 hydrogenation into short-chain olefins using iron-based catalysts and alternative catalysts with multifunctional properties.
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页数:22
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共 143 条
[1]   Utilization of greenhouse gas carbon dioxide for cleaner Fischer-Tropsch diesel production [J].
Bahri, Shashank ;
Venezia, Anna Maria ;
Upadhyayula, Sreedevi .
JOURNAL OF CLEANER PRODUCTION, 2019, 228 :1013-1024
[2]   Carbon dioxide utilization via carbonate-promoted C-H carboxylation [J].
Banerjee, Aanindeeta ;
Dick, Graham R. ;
Yoshino, Tatsuhiko ;
Kanan, Matthew W. .
NATURE, 2016, 531 (7593) :215-+
[3]   Electrocatalytic and homogeneous approaches to conversion of CO2 to liquid fuels [J].
Benson, Eric E. ;
Kubiak, Clifford P. ;
Sathrum, Aaron J. ;
Smieja, Jonathan M. .
CHEMICAL SOCIETY REVIEWS, 2009, 38 (01) :89-99
[4]   The Effect of Copper Addition on the Activity and Stability of Iron-Based CO2 Hydrogenation Catalysts [J].
Bradley, Matthew J. ;
Ananth, Ramagopal ;
Willauer, Heather D. ;
Baldwin, Jeffrey W. ;
Hardy, Dennis R. ;
Williams, Frederick W. .
MOLECULES, 2017, 22 (09)
[5]   ACTIVATION STUDIES WITH A PRECIPITATED IRON CATALYST FOR FISCHER-TROPSCH SYNTHESIS .2. REACTION STUDIES [J].
BUKUR, DB ;
NOWICKI, L ;
MANNE, RK ;
LANG, XS .
JOURNAL OF CATALYSIS, 1995, 155 (02) :366-375
[6]   The Promoting Role of Ni on In2O3 for CO2 Hydrogenation to Methanol [J].
Cannizzaro, Francesco ;
Hensen, Emiel J. M. ;
Filot, Ivo A. W. .
ACS CATALYSIS, 2023, 13 (03) :1875-1892
[7]   Reactive ball-milling synthesis of Co-Fe bimetallic catalyst for efficient hydrogenation of carbon dioxide to value-added hydrocarbons [J].
Chen, Haipeng ;
Wang, Chenwei ;
Zheng, Mengyang ;
Liu, Chenlei ;
Li, Wenqiang ;
Yang, Qingfeng ;
Zhou, Shixue ;
Feng, Xun .
JOURNAL OF ENERGY CHEMISTRY, 2023, 84 :210-218
[8]   Rationally Designed Water Enriched Nano Reactor for Stable CO2 Hydrogenation with Near 100% Ethanol Selectivity over Diatomic Palladium Active Sites [J].
Chen, Jie ;
Zha, Yajun ;
Liu, Bing ;
Li, Yufeng ;
Xu, Yuebing ;
Liu, Xiaohao .
ACS CATALYSIS, 2023, 13 (10) :7110-7121
[9]   Benchmarking promoters of Fe/activated carbon catalyst for stable hydrogenation of CO2 to liquid hydrocarbons [J].
Chen, Jingyu ;
Han, Seung Ju ;
Park, Hae-Gu ;
Nasriddinov, Khasan ;
Zhang, Chundong ;
Jun, Ki-Won ;
Kim, Seok Ki .
APPLIED CATALYSIS B-ENVIRONMENT AND ENERGY, 2023, 325
[10]   Hydrogenation of CO2 to light olefins on CuZnZr@(Zn-)SAPO-34 catalysts: Strategy for product distribution [J].
Chen, Jingyu ;
Wang, Xu ;
Wu, Dakai ;
Zhang, Jianli ;
Ma, Qingxiang ;
Gao, Xinhua ;
Lai, Xiaoyong ;
Xia, Hongqiang ;
Fan, Subing ;
Zhao, Tian-Sheng .
FUEL, 2019, 239 :44-52