Abstract
The catalytic hydrogenation of captured CO2 by different industrial processes allows obtaining liquid biofuels and some chemical products that not only present the interest of being obtained from a very low-cost raw material (CO2) that indeed constitutes an environmental pollution problem but also constitute an energy vector, which can facilitate the storage and transport of very diverse renewable energies. Thus, the combined use of green H2 and captured CO2 to obtain chemical products and biofuels has become attractive for different processes such as power-to-liquids (P2L) and power-to-gas (P2G), which use any renewable power to convert carbon dioxide and water into value-added, synthetic renewable E-fuels and renewable platform molecules, also contributing in an important way to CO2 mitigation. In this regard, there has been an extraordinary increase in the study of supported metal catalysts capable of converting CO2 into synthetic natural gas, according to the Sabatier reaction, or in dimethyl ether, as in power-to-gas processes, as well as in liquid hydrocarbons by the Fischer-Tropsch process, and especially in producing methanol by P2L processes. As a result, the current review aims to provide an overall picture of the most recent research, focusing on the last five years, when research in this field has increased dramatically.
Funder
Junta de Andalucía and FEDER
UCO-FEDER
Subject
Physical and Theoretical Chemistry,Catalysis,General Environmental Science
Reference429 articles.
1. A review of greenhouse gas emission profiles, dynamics, and climate change mitigation efforts across the key climate change players;Zheng;J. Clean. Prod.,2019
2. Teske, S., Giurco, D., Morris, T., Nagrath, K., Mey, F., Briggs, C., Dominish, E., and Florin, N. (2019). Achieving the Paris Climate Agreement Goals: Global and Regional 100% Renewable Energy Scenarios to Achieve the Paris Agreement Goals with Non-Energy GHG Pathways for +1.5 °C and +2 °C, Springer.
3. Process analysis overview of ionic liquids on CO2 chemical capture;Lemus;Chem. Eng. J.,2020
4. CO2 utilization: Turning greenhouse gas into fuels and valuable products;Anwar;J. Environ. Manag.,2020
5. Kleij, A.W., North, M., and Urakawa, A. (2017). CO2 Catalysis, Wiley Online Library.
Cited by
9 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献