Interaction of Cathode Interface Microenvironment and Anode Electrolyte in Zero-Gap Electrolyzer for CO2 Conversion

被引:1
|
作者
Yuan, Lei [1 ]
Wan, Qiqi [1 ]
Jiang, Wenxing [1 ]
Li, Guangfu [2 ]
Zhuang, Xiaodong [3 ]
Zhang, Junliang [1 ]
Ke, Changchun [1 ]
机构
[1] Shanghai Jiao Tong Univ, Inst Fuel Cells, Sch Mech Engn, Shanghai 200240, Peoples R China
[2] Foshan Xianhu Lab Adv Energy Sci & Technol, Guangdong Lab, Foshan 528200, Peoples R China
[3] Shanghai Jiao Tong Univ, Sch Chem & Chem Engn, Mesoentropy Matter Lab, Shanghai 200240, Peoples R China
来源
基金
中国国家自然科学基金;
关键词
CO2 electrochemical reduction; membrane electrodeassembly; cathode interface; electrolyte; gas diffusion electrode;
D O I
10.1021/acssuschemeng.4c02781
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The electrocatalytic conversion of carbon dioxide into fuels and chemicals using renewable energy holds tremendous promise as a viable solution for mitigating CO2 and storing intermittent renewable resources. While considerable researches have explored catalysts for CO2 reduction, opportunities remain to improve the efficiency and selectivity of the electrochemical conversion through tailored electrode and electrolyzer designs. Herein, we investigated the impact of anode electrolyte on the cathode interfacial microenvironment in zero-gap electrolytic cells for carbon dioxide reduction by employing two customized cathode electrode preparation technologies. It was found that due to variances in interfacial resistance caused by the interfacial differences, the catalyst-coated membrane (CCM) exhibited superior performance when the anode electrolyte was pure water, whereas the catalyst-coated substrate (CCS) demonstrated enhanced capabilities when the anode electrolyte was 1 M KHCO3. Further experiments also revealed that due to the distinct distribution of cathode electrolyte, CCS exhibited superior gas diffusion flux and stability, while CCM demonstrated higher catalyst utilization efficiency. These findings provide new insights into optimizing carbon dioxide reduction in zero-gap assemblies, and suggest that the anode electrolyte should be matched and optimized based on the different interface characteristics of the electrodes.
引用
收藏
页码:11949 / 11956
页数:8
相关论文
共 50 条
  • [31] A 3D Numerical Study on Flow Field Designs in Zero-Gap CO2 Electrolyzers
    Wang, Rongyi
    Yuan, Shu
    Xue, Rui
    Cheng, Ming
    Yan, Xiaohui
    Shen, Shuiyun
    Guo, Yangge
    Zhang, Junliang
    ENERGY & FUELS, 2025, 39 (08) : 3942 - 3953
  • [32] New strategies for economically feasible CO2 electroreduction using a porous membrane in zero-gap configuration
    Lee, Woong Hee
    Kim, Kyeongsu
    Lim, Chulwan
    Ko, Young-Jin
    Hwang, Yun Jeong
    Min, Byoung Koun
    Lee, Ung
    Oh, Hyung-Suk
    JOURNAL OF MATERIALS CHEMISTRY A, 2021, 9 (29) : 16169 - 16177
  • [33] Cation Crossover Limits Accessible Current Densities for Zero-Gap Alkaline CO2 Reduction to Ethylene
    Simonson, Hunter
    Henckel, Danielle
    Klein, W. Ellis
    Neyerlin, K. C.
    Smith, Wilson A.
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2025, 13 (02): : 823 - 833
  • [34] An Ir-based anode for a practical CO2 electrolyzer
    Luc, Wesley
    Rosen, Jonathan
    Jiao, Feng
    CATALYSIS TODAY, 2017, 288 : 79 - 84
  • [35] Highly selective and stackable electrode design for gaseous CO2 electroreduction to ethylene in a zero-gap configuration
    Lee, Woong Hee
    Lim, Chulwan
    Lee, Si Young
    Chae, Keun Hwa
    Choi, Chang Hyuck
    Lee, Ung
    Min, Byoung Koun
    Hwang, Yun Jeong
    Oh, Hyung-Suk
    NANO ENERGY, 2021, 84
  • [36] Zero-Gap Electrochemical CO2 Reduction Cells: Challenges and Operational Strateges for Prevention of Salt Precipitation
    Sassenburg, Mark
    Kelly, Maria
    Subramanian, Siddhartha
    Smith, Wilson A.
    Burdyny, Thomas
    ACS ENERGY LETTERS, 2023, 8 (01) : 321 - 331
  • [37] Carbon black supported Ag nanoparticles in zero-gap CO2 electrolysis to CO enabling high mass activity
    Seteiz, Khaled
    Haeberlein, Josephine N.
    Heizmann, Philipp A.
    Disch, Joey
    Vierrath, Severin
    RSC ADVANCES, 2023, 13 (27) : 18916 - 18926
  • [38] Scaling up electrochemical CO2 reduction: enhancing the performance of metalloporphyrin complexes in zero-gap electrolyzers
    Wiesner, Wiebke
    Arias, Jenny Yurley Maldonado
    Joekel, Julia
    Cao, Rui
    Apfel, Ulf-Peter
    CHEMICAL COMMUNICATIONS, 2024, 60 (98) : 14668 - 14671
  • [39] The importance of target product engineering for long-term operation of CO2 zero-gap electrolysers
    Duarte, Miguel
    Hereijgers, Jonas
    Daems, Nick
    Van Daele, Sam
    Breugelmans, Tom
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2022, 10 (03):
  • [40] Understanding the Temperature Effect on Carbon-Carbon Coupling during CO2 and CO Electroreduction in Zero-Gap Electrolyzers
    Zhuansun, Mengjiao
    Wang, Xuan
    Teng, Wenzhi
    Wang, Yuhang
    CHINESE JOURNAL OF CHEMISTRY, 2024, 42 (22) : 2705 - 2711