Recent advances in thermocatalytic hydrogenation of carbon dioxide to light olefins and liquid fuels via modified Fischer-Tropsch pathway

被引:67
作者
Jiang, Yongjun [1 ,2 ]
Wang, Kangzhou [1 ]
Wang, Yuan [1 ]
Liu, Zhihao [1 ]
Gao, Xinhua [1 ,2 ]
Zhang, Jianli [1 ]
Ma, Qingxiang [1 ]
Fan, Subing [1 ]
Zhao, Tian-Sheng [1 ]
Yao, Min [1 ]
机构
[1] Ningxia Univ, Coll Chem & Chem Engn, State Key Lab High efficiency Utilizat Coal & Gree, Yinchuan 750021, Peoples R China
[2] China Energy Grp Ningxia Ind Coal Co Ltd, Coal Chem Ind Technol Res Inst, Yinchuan 750411, Ningxia, Peoples R China
基金
中国国家自然科学基金;
关键词
CO2; hydrogenation; Multifunctional catalyst; Light olefins; Liquid fuels; Modified FTs route; WATER-GAS SHIFT; HIGHLY SELECTIVE CONVERSION; CO2; HYDROGENATION; CATALYTIC-HYDROGENATION; HETEROGENEOUS CATALYSTS; IRON CATALYST; FE-CO/K-AL2O3; CATALYSTS; STEAM CRACKING; ACTIVE PHASES; FE CATALYSTS;
D O I
10.1016/j.jcou.2022.102321
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
With the rapid economic development, the excessive use of fossil fuels and the massive emission of carbon di-oxide (CO2), as a greenhouse gas, have aroused a series of environment issues. Direct CO2 hydrogenation to value-added chemicals using renewable energy is an effective strategy to reduce CO2 and dependence on fossil fuels. Among these value-added chemicals, light olefins and liquid fuels have attracted the attention of both academic and industry as one of the most important chemicals in our daily life. Light olefins and liquid fuels can be produced from CO2 hydrogenation via a modified Fischer-Tropsch synthesis (FTs) route or via a methanol-mediated process. Compared with methanol-mediated process, FTs route is favorable for CO2 hydrogenation to light olefins and liquid fuels due to its lower energy consumption and higher conversion efficiency. Although great progress has been made in CO2 hydrogenation to light olefins and liquid fuels, designing efficient catalysts to effectively control the activation of C-O bond and the growth of C-C bond remains a great challenge. This review highlights research advances in thermocatalytic hydrogenation of CO2 to light olefins and liquid fuels via modified FTs pathway. The catalyst design, reaction mechanism, catalyst component, and key factors affecting catalytic performance are summarized and analyzed for CO2 hydrogenation to light olefins and liquid fuels. The purpose of this review is to provide a comprehensive view on catalysts for CO2 hydrogenation to light olefins and liquid fuels to inspire the development of novel catalysts in the future.
引用
收藏
页数:23
相关论文
共 162 条
[21]   Selective Production of Aromatics Directly from Carbon Dioxide Hydrogenation [J].
Cui, Xu ;
Gao, Peng ;
Li, Shenggang ;
Yang, Chengguang ;
Liu, Ziyu ;
Wang, Hui ;
Zhong, Liangshu ;
Sun, Yuhan .
ACS CATALYSIS, 2019, 9 (05) :3866-3876
[22]   CO2 conversion by reverse water gas shift catalysis: comparison of catalysts, mechanisms and their consequences for CO2 conversion to liquid fuels [J].
Daza, Yolanda A. ;
Kuhn, John N. .
RSC ADVANCES, 2016, 6 (55) :49675-49691
[23]   Stability and Reactivity of ε-χ-θ Iron Carbide Catalyst Phases in Fischer-Tropsch Synthesis: Controlling μc [J].
de Smit, Emiel ;
Cinquini, Fabrizio ;
Beale, Andrew M. ;
Safonova, Olga V. ;
van Beek, Wouter ;
Sautet, Philippe ;
Weckhuysen, Bert M. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (42) :14928-14941
[24]   CO2 hydrogenation to light olefins with high-performance Fe0.30Co0.15Zr0.45K0.10O1.63 [J].
Ding, Jie ;
Huang, Liang ;
Gong, Weibo ;
Fan, Maohong ;
Zhong, Qin ;
Russell, Armistead G. ;
Gu, Hao ;
Zhang, Haijun ;
Zhang, Yulong ;
Ye, Run-ping .
JOURNAL OF CATALYSIS, 2019, 377 :224-232
[25]   Study on reduction and carburization behaviors of iron-based Fischer-Tropsch synthesis catalyst [J].
Ding, Mingyue ;
Yang, Yong ;
Wu, Baoshan ;
Li, Yongwang ;
Wang, Tiejun ;
Ma, Longlong .
INTERNATIONAL CONFERENCE ON APPLIED ENERGY, ICAE2014, 2014, 61 :2267-2270
[26]   Transformation of carbonaceous species and its influence on catalytic performance for iron-based Fischer-Tropsch synthesis catalyst [J].
Ding, Mingyue ;
Yang, Yong ;
Wu, Baoshan ;
Wang, Tiejun ;
Ma, Longlong ;
Xiang, Hongwei ;
Li, Yongwang .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 2011, 351 :165-173
[27]   Modifying the Hydrogenation Activity of Zeolite Beta for Enhancing the Yield and Selectivity for Fuel-Range Alkanes from Carbon Dioxide [J].
Dokania, Abhay ;
Ramirez, Adrian ;
Shterk, Genrikh ;
Cerrillo, Jose Luis ;
Gascon, Jorge .
CHEMPLUSCHEM, 2022, 87 (06)
[28]   C2-C5+ olefin production from CO2 hydrogenation using ceria modified Fe/Mn/K catalysts [J].
Dorner, Robert W. ;
Hardy, Dennis R. ;
Williams, Frederick W. ;
Willauer, Heather D. .
CATALYSIS COMMUNICATIONS, 2011, 15 (01) :88-92
[29]   Heterogeneous catalytic CO2 conversion to value-added hydrocarbons [J].
Dorner, Robert W. ;
Hardy, Dennis R. ;
Williams, Frederick W. ;
Willauer, Heather D. .
ENERGY & ENVIRONMENTAL SCIENCE, 2010, 3 (07) :884-890
[30]   K and Mn doped iron-based CO2 hydrogenation catalysts: Detection of KAlH4 as part of the catalyst's active phase [J].
Dorner, Robert W. ;
Hardy, Dennis R. ;
Williams, Frederick W. ;
Willauer, Heather D. .
APPLIED CATALYSIS A-GENERAL, 2010, 373 (1-2) :112-121