Electrochemical CO2 conversion technologies: state-of-the-art and future perspectives

被引:19
|
作者
Detz, Remko J. [1 ]
Ferchaud, Claire J. [2 ]
Kalkman, Arie J. [3 ]
Kemper, Jasmin [4 ]
Sanchez-Martinez, Carlos [3 ]
Saric, Marija [2 ]
Shinde, Manoj V. [2 ]
机构
[1] Netherlands Org Appl Sci Res TNO, Energy Transit Studies ETS, Radarweg 60, NL-1043 NT Amsterdam, Netherlands
[2] Netherlands Org Appl Sci Res TNO, Sustainable Technol Ind Proc STIP, POB 1, NL-1755 ZG Petten, Netherlands
[3] Netherlands Org Appl Sci Res TNO, Sustainable Proc & Energy Syst SPES, POB 6012, NL-2600 JA Delft, Netherlands
[4] IEA Greenhouse Gas R&D Programme, Pure Off, Cheltenham Off Pk,Hatherley Lane, Cheltenham GL51 6SH, Glos, England
关键词
CARBON-MONOXIDE; TECHNOECONOMIC ANALYSIS; LEARNING-CURVES; ELECTROLYSIS; ELECTROREDUCTION; REDUCTION; RATES; POWER; GAS; CHEMICALS;
D O I
10.1039/d3se00775h
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Electrochemical reduction of CO<INF>2</INF> to produce chemicals or fuels may contribute to the zero-emission goal of the chemical industry. Here, we report the state-of-the-art and future perspective of electrochemical CO<INF>2</INF> conversion processes to produce CO, syngas, formic acid and ethylene. We selected and explored six routes: low-temperature CO production, low-temperature formic acid production, low-temperature ethylene production, high-temperature CO production, high-temperature syngas production, and a tandem approach to produce ethylene. For these routes, we describe the current level of development, performance indicators, and costs. The state-of-the-art of the chlor-alkali process is included as an example of a commercially applied electrochemical process. We calculate the economic performance of the various pathways in terms of levelized production costs and we use a learning curve method to project costs up to 2050. The greenhouse gas performance for all routes is determined and compared to the current reference of production from fossil-based resources. We conclude that high-temperature solid-oxide electrolysis to produce CO and syngas is the most developed and closest to reaching break-even levelized production cost in comparison to the fossil reference. Low-temperature electrolysis processes are at a lower technology readiness level and still need a substantial reduction in investment costs and improvements in process efficiency to achieve break-even with incumbent technology. The most promising of the low-temperature processes is formic acid production. Electrochemical production of formic acid, CO, and syngas results or can soon result in substantial GHG savings compared to their fossil-based alternatives. The extent to which savings can be achieved depends merely on the carbon intensity of the local power grid, or more generally, the supplied electricity. Electrochemical CO<INF>2</INF> conversion to produce ethylene would require a very low emission factor of electricity (<50 g<INF>CO<INF>2</INF></INF> per kW h) to be competitive with current production methods and is therefore not likely to contribute significantly to the zero-emission goal of the petrochemical industry in the foreseeable future. Research gaps are identified at various levels: improvement of the performance of the various components, such as catalysts and electrodes, and of purification of feedstock and product streams. Pilot and demonstration projects of the entire value chain from the CO<INF>2</INF> stream to the final product are needed to more accurately determine the performance, total investment costs, and operating and maintenance costs in an industrial environment.
引用
收藏
页码:5445 / 5472
页数:28
相关论文
共 50 条
  • [31] Advancing integrated CO2 electrochemical conversion with amine-based CO2 capture: a review
    Li, Mengran
    Yang, Kailun
    Abdinejad, Maryam
    Zhao, Chuan
    Burdyny, Thomas
    NANOSCALE, 2022, 14 (33) : 11892 - 11908
  • [32] State-Of-The-Art and Trends in CO2 Laser Cutting of Polymeric Materials-A Review
    Mushtaq, Ray Tahir
    Wang, Yanen
    Rehman, Mudassar
    Khan, Aqib Mashood
    Mia, Mozammel
    MATERIALS, 2020, 13 (17)
  • [33] Mechanism for reversible CO/CO2 electrochemical conversion on a patterned nickel electrode
    Luo, Yu
    Li, Wenying
    Shi, Yixiang
    Cai, Ningsheng
    JOURNAL OF POWER SOURCES, 2017, 366 : 93 - 104
  • [34] Efficient Electrochemical Flow System with Improved Anode for the Conversion of CO2 to CO
    Ma, Sichao
    Luo, Raymond
    Moniri, Saman
    Lan, Yangchun
    Kenis, Paul J. A.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2014, 161 (10) : F1124 - F1131
  • [35] Electrochemical Conversion of CO2 into Valuable Carbon Nanotubes: The Insights into Metallic Electrodes Screening
    Li, Zhida
    Zhang, Wenyong
    Ji, Deqiang
    Liu, Shihao
    Cheng, Yuan
    Han, Jiaqi
    Wu, Hongjun
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2020, 167 (04)
  • [36] Development of electrochemical reactors for CO2 electroreduction-the viability of an electrochemical CO2 plant in Brazil
    Nogueira, Jessica Alves
    Pereira, Igor Franca
    Amaral, Paulo Henrique Ribeiro
    Miranda, Caetano Rodrigues
    Meneghini, Julio Romano
    Lopes, Thiago
    PROGRESS IN ENERGY, 2022, 4 (04):
  • [37] Sustainability assessment of plasma-based and electrolytic CO2 conversion to CO
    Escriba-Gelonch, Marc
    Osorio-Tejada, Jose
    Vertongen, Rani
    Bogaerts, Annemie
    Hessel, Volker
    JOURNAL OF CLEANER PRODUCTION, 2025, 488
  • [38] CO poisoning of silver gas diffusion electrodes in electrochemical CO2 reduction
    Osiewacz, Jens
    Loeffelholz, Marco
    Weseler, Lydia
    Turek, Thomas
    ELECTROCHIMICA ACTA, 2023, 445
  • [39] Investigation of Gas Diffusion Electrode Systems for the Electrochemical CO2 Conversion
    Guzman, Hilmar
    Zammillo, Federica
    Roldan, Daniela
    Galletti, Camilla
    Russo, Nunzio
    Hernandez, Simelys
    CATALYSTS, 2021, 11 (04)
  • [40] Porous carbon materials for CO2 capture, storage and electrochemical conversion
    Kim, Changmin
    Talapaneni, Siddulu Naidu
    Dai, Liming
    MATERIALS REPORTS: ENERGY, 2023, 3 (02):