Review-Electrochemical CO2 Reduction for CO Production: Comparison of Low- and High-Temperature Electrolysis Technologies

被引:320
作者
Kungas, Rainer [1 ]
机构
[1] Haldor Topsoe Res Labs, Haldor Topsoes Alle 1, Lyngby, Denmark
关键词
SOLID OXIDE ELECTROLYSIS; CARBON-DIOXIDE; FUEL-CELLS; SYSTEM; ELECTROREDUCTION; CONVERSION; ELECTRODES; TRANSPORT; MONOXIDE; STACK;
D O I
10.1149/1945-7111/ab7099
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Recently, the field of CO2 electrolysis has experienced rapid scientific and technological progress. This review focuses specifically on the electrochemical conversion of CO2 into carbon monoxide (CO), an important "building block" for the chemicals industry. CO2 electrolysis technologies offer potentially carbon-neutral routes for the production of specialty and commodity chemicals. Many different technologies are actively being pursued. Electrochemical CO2 reduction from aqueous solutions stems from the success of alkaline and polymer electrolyte membrane electrolyzers for water electrolysis and uses performance metrics established within the field of aqueous electrochemistry. High-temperature CO2 electrolysis systems rely heavily on experience gained from developing molten carbonate and solid oxide fuel cells, where device performance is evaluated using very different parameters, commonly employed in solid-state electrochemistry. In this review, state-of-the-art low-temperature, molten carbonate, and solid oxide electrolyzers for the production of CO are reviewed, followed by a direct comparison of the three technologies using some of the most common figures of merit from each field. Based on the comparison, high-temperature electrolysis of CO2 in solid oxide electrolysis cells seems to be a particularly attractive method for electrochemical CO production, owing to its high efficiency and proven durability, even at commercially relevant current densities. (c) 2020 The Author(s). Published on behalf of The Electrochemical Society by IOP Publishing Limited.
引用
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页数:11
相关论文
共 68 条
[1]  
[Anonymous], Emissions-Global Energy & CO2 Status Report 2019-Analysis-IEA
[2]  
[Anonymous], 2017, SOLID OXIDE ELECTROL
[3]  
Battelle Memorial Institute, 2017, MAN COST AN 1 5 25 K
[4]  
Bertleff W., 2000, Carbonylation. Ullmann's Encyclopedia of Industrial Chemistry
[5]   Efficient reduction of CO2 in a solid oxide electrolyzer [J].
Bidrawn, F. ;
Kim, G. ;
Corre, G. ;
Irvine, J. T. S. ;
Vohs, J. M. ;
Gorte, R. J. .
ELECTROCHEMICAL AND SOLID STATE LETTERS, 2008, 11 (09) :B167-B170
[6]  
Bierhals J., 2002, CARBON MONOXIDE ULLM, V6th, P679
[7]   CO2 reduction on gas-diffusion electrodes and why catalytic performance must be assessed at commercially-relevant conditions [J].
Burdyny, Thomas ;
Smith, Wilson A. .
ENERGY & ENVIRONMENTAL SCIENCE, 2019, 12 (05) :1442-1453
[8]   What Should We Make with CO2 and How Can We Make It? [J].
Bushuyev, Oleksandr S. ;
De Luna, Phil ;
Cao Thang Dinh ;
Tao, Ling ;
Saur, Genevieve ;
van de lagemaat, Jao ;
Kelley, Shana O. ;
Sargent, Edward H. .
JOULE, 2018, 2 (05) :825-832
[9]   What would it take for renewably powered electrosynthesis to displace petrochemical processes? [J].
De Luna, Phil ;
Hahn, Christopher ;
Higgins, Drew ;
Jaffer, Shaffiq A. ;
Jaramillo, Thomas F. ;
Sargent, Edward H. .
SCIENCE, 2019, 364 (6438) :350-+
[10]   Design of an electrochemical cell making syngas (CO+H2) from CO2 and H2O reduction at room temperature [J].
Delacourt, Charles ;
Ridgway, Paul L. ;
Kerr, John B. ;
Newman, John .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2008, 155 (01) :B42-B49