Research progress of carbon dioxide reduction and utilization

被引:0
|
作者
Zhang Y. [1 ]
Wang C. [1 ]
Shu W. [2 ]
机构
[1] College of Materials Science and Engineering, Chongqing University, Chongqing
[2] Beijing Spacecrafts, Beijing
关键词
carbon dioxide; carbon neutral; carbon sinks; mechanism; preparation method;
D O I
10.16085/j.issn.1000-6613.2022-0705
中图分类号
学科分类号
摘要
With China’s goal of carbon peak and carbon neutrality in 2020, reducing carbon emissions has become the country’s main goal in ecological and environmental governance. Carbon dioxide is the main greenhouse gas and the main form of carbon in the air. In industry, it has the advantages of easy access to raw materials and large storage under natural conditions. If the carbon dioxide in the air can be recycled and prepared into new substances that can be reused through the reaction, it not only provides a new idea for effectively reducing carbon emissions, but also makes the carbon dioxide be effectively utilized. In order to further study the reduction and transformation of carbon dioxide, the main enrichment methods of carbon dioxide in air and their reduction and transformation ideas were described in this paper. According to the requirement of carbon dioxide concentration and the research methods, including direct conversion, electrocatalysis, photocatalysis, artificial photosynthesis and enzymatic method, the research in recent two years was summarized. The preparation methods and research results were reviewed, which provided a further reference for the study of carbon dioxide reduction and utilization. © 2023 Chemical Industry Press. All rights reserved.
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页码:944 / 956
页数:12
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  • [1] DINH C T, BURDYNY T, KIBRIA M G, Et al., CO<sub>2</sub> electroreduction to ethylene via hydroxide-mediated copper catalysis at an abrupt interface, Science, 360, 6390, pp. 783-787, (2018)
  • [2] LUTHI Dieter, LE FLOCH Martine, BEREITER Bernhard, Et al., High-resolution carbon dioxide concentration record 650000—800000 years before present, Nature, 453, 7193, pp. 379-382, (2008)
  • [3] LIANG Jiaojiao, WEI Zengxi, WANG Caiyun, Et al., Vacancy-induced sodium-ion storage in N-doped carbon nanofiber@MoS<sub>2</sub> nanosheet arrays, Electrochimica Acta, 285, pp. 301-308, (2018)
  • [4] GUO Renhao, LIU Ching-Fang, WEI Tzu-Chien, Et al., Electrochemical behavior of CO<sub>2</sub> reduction on palladium nanoparticles: Dependence of adsorbed CO on electrode potential, Electrochemistry Communications, 80, pp. 24-28, (2017)
  • [5] LIU Weiqi, QI Jiawei, BAI Peiyao, Et al., Utilizing spatial confinement effect of N atoms in micropores of coal-based metal-free material for efficiently electrochemical reduction of carbon dioxide, Applied Catalysis B: Environmental, 272, (2020)
  • [6] WU Yimin A, MCNULTY Ian, LIU Cong, Et al., Author correction: Facet-dependent active sites of a single Cu<sub>2</sub>O particle photocatalyst for CO<sub>2</sub> reduction to methanol, Nature Energy, 5, 1, (2020)
  • [7] QIAO Jinli, LIU Yuyu, HONG Feng, Et al., A review of catalysts for the electroreduction of carbon dioxide to produce low-carbon fuels, Chemical Society Reviews, 43, 2, pp. 631-675, (2014)
  • [8] KLANKERMAYER J, LEITNER W., Harnessing renewable energy with CO<sub>2</sub> for the chemical value chain: Challenges and opportunities for catalysis, Philosophical Transactions Series A, Mathematical, Physical, and Engineering Sciences, 374, 2061, (2016)
  • [9] PERATHONER S, CENTI G., CO<sub>2</sub> recycling: A key strategy to introduce green energy in the chemical production chain, ChemSusChem, 7, 5, pp. 1274-1282, (2014)
  • [10] TING Louisa Rui Lin, YEO Boon Siang, Recent advances in understanding mechanisms for the electrochemical reduction of carbon dioxide, Current Opinion in Electrochemistry, 8, pp. 126-134, (2018)