Catalysis for CO2 conversion: a key technology for rapid introduction of renewable energy in the value chain of chemical industries

被引:1057
作者
Centi, Gabriele [1 ,2 ]
Quadrelli, Elsje Alessandra [3 ,4 ]
Perathoner, Siglinda [1 ,2 ]
机构
[1] Univ Messina, Dept Elect Engn Ind Chem & Engn, Sect Ind Chem, I-98166 Messina, Italy
[2] INSTM CASPE Lab Catalysis Sustainable Prod & Ener, I-98166 Messina, Italy
[3] CPE Lyon, F-69616 Villeurbanne, France
[4] Univ Lyon 1, CNRS, Ecole Super Chim Phys Elect Lyon, ICL,UMR LCOMS C2P2 5265,CPE Lyon, F-69616 Villeurbanne, France
关键词
FISCHER-TROPSCH SYNTHESIS; DIMETHYL ETHER SYNTHESIS; CARBON-DIOXIDE HYDROGENATION; IRON-NICKEL CATALYSTS; FORMIC-ACID; METHANOL SYNTHESIS; LIGHT OLEFINS; SOLAR FUELS; COBALT CATALYSTS; PHOTOELECTROCHEMICAL REDUCTION;
D O I
10.1039/c3ee00056g
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Replacement of part of the fossil fuel consumption by renewable energy, in particular in the chemical industry, is a central strategy for resource and energy efficiency. This perspective will show that CO2 is the key molecule to proceed effectively in this direction. The routes, opportunities and barriers in increasing the share of renewable energy by using CO2 reaction and their impact on the chemical and energy value chains are discussed after introducing the general aspects of this topic evidencing the tight integration between the CO2 use and renewable energy insertion in the value chain of the process industry. The focus of this perspective article is on the catalytic aspects of the chemistries involved, with an analysis of the state-of-the-art, perspectives and targets to be developed. The reactions discussed are the production of short-chain olefins (ethylene, propylene) from CO2, and the conversion of carbon dioxide to syngas, formic acid, methanol and dimethyl ether, hydrocarbons via Fischer-Tropsch synthesis and methane. The relevance of availability, cost and environmental footprints of H-2 production routes using renewable energies is addressed. The final part discusses the possible scenario for CO2 as an intermediary for the incorporation of renewable energy in the process industry, with a concise roadmap for catalysis needs and barriers to reach this goal.
引用
收藏
页码:1711 / 1731
页数:21
相关论文
共 236 条
[1]  
ABB, 2011, OV EN EFF IND UT TRE
[2]   CO2 methanation property of Ru nanoparticle-loaded TiO2 prepared by a polygonal barrel-sputtering method [J].
Abe, Takayuki ;
Tanizawa, Masaaki ;
Watanabe, Kuniaki ;
Taguchi, Akira .
ENERGY & ENVIRONMENTAL SCIENCE, 2009, 2 (03) :315-321
[3]   Exploring Iron-based Multifunctional Catalysts for Fischer-Tropsch Synthesis: A Review [J].
Abello, Sonia ;
Montane, Daniel .
CHEMSUSCHEM, 2011, 4 (11) :1538-1556
[4]   The Electrochemical Reduction of Carbon Dioxide to Formate/Formic Acid: Engineering and Economic Feasibility [J].
Agarwal, Arun S. ;
Zhai, Yumei ;
Hill, Davion ;
Sridhar, Narasi .
CHEMSUSCHEM, 2011, 4 (09) :1301-1310
[5]   A comprehensive mathematical model for the Fischer-Tropsch synthesis in well-mixed slurry reactors [J].
Ahón, VR ;
Costa, EF ;
Monteagudo, JEP ;
Fontes, CE ;
Biscaia, EC ;
Lage, PLC .
CHEMICAL ENGINEERING SCIENCE, 2005, 60 (03) :677-694
[6]   Direct methane conversion routes to chemicals and fuels [J].
Alvarez-Galvan, M. C. ;
Mota, N. ;
Ojeda, M. ;
Rojas, S. ;
Navarro, R. M. ;
Fierro, J. L. G. .
CATALYSIS TODAY, 2011, 171 (01) :15-23
[7]   Synthesis of solar fuels by a novel photoelectrocatalytic approach [J].
Ampelli, Claudio ;
Centi, Gabriele ;
Passalacqua, Rosalba ;
Perathoner, Siglinda .
ENERGY & ENVIRONMENTAL SCIENCE, 2010, 3 (03) :292-301
[8]   Dimethyl ether synthesis from CO2 hydrogenation on a CuO-ZnO-Al2O3-ZrO2/HZSM-5 bifunctional catalyst [J].
An, Xin ;
Zuo, Yi-Zan ;
Zhang, Qiang ;
Wang, De-zheng ;
Wang, Jin-Fu .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2008, 47 (17) :6547-6554
[9]  
[Anonymous], 2011, A resource-efficient Europe - Flagship initiative under the Europe 2020 strategy
[10]  
[Anonymous], NRELTP64041134