Bioinspired Hydrophobicity for Enhancing Electrochemical CO2 Reduction

被引:8
|
作者
Bai, Jingwen [1 ,2 ]
Wang, Wenshuo [2 ]
Liu, Jian [1 ,2 ]
机构
[1] Qingdao Univ Sci & Technol, Coll Mat Sci & Engn, Qingdao 266042, Peoples R China
[2] Chinese Acad Sci, Qingdao Inst Bioenergy & Bioproc Technol, Shandong Energy Inst, Qingdao New Energy Shandong Lab, R China, Qingdao 266101, Peoples R China
基金
中国国家自然科学基金;
关键词
CO2; reduction; electrochemistry; local concentration; enrichment; hydrophobic effect; GAS-DIFFUSION ELECTRODES; METAL-ORGANIC FRAMEWORKS; CARBON-DIOXIDE REDUCTION; ELECTROREDUCTION PERFORMANCE; OXYGEN VACANCIES; EFFICIENT; CU; CONVERSION; ETHYLENE; CATALYST;
D O I
10.1002/chem.202302461
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Electrochemical carbon dioxide reduction (CO2R) is a promising pathway for converting greenhouse gasses into valuable fuels and chemicals using intermittent renewable energy. Enormous efforts have been invested in developing and designing CO2R electrocatalysts suitable for industrial applications at accelerated reaction rates. The microenvironment, specifically the local CO2 concentration (local [CO2]) as well as the water and ion transport at the CO2-electrolyte-catalyst interface, also significantly impacts the current density, Faradaic efficiency (FE), and operation stability. In nature, hydrophobic surfaces of aquatic arachnids trap appreciable amounts of gases due to the "plastron effect", which could inspire the reliable design of CO2R catalysts and devices to enrich gaseous CO2. In this review, starting from the wettability modulation, we summarize CO2 enrichment strategies to enhance CO2R. To begin, superwettability systems in nature and their inspiration for concentrating CO2 in CO2R are described and discussed. Moreover, other CO2 enrichment strategies, compatible with the hydrophobicity modulation, are explored from the perspectives of catalysts, electrolytes, and electrolyzers, respectively. Finally, a perspective on the future development of CO2 enrichment strategies is provided. We envision that this review could provide new guidance for further developments of CO2R toward practical applications.
引用
收藏
页数:19
相关论文
共 50 条
  • [31] LCA of electrochemical reduction of CO2 to ethylene
    Khoo, Hsien H.
    Halim, Iskandar
    Handoko, Albertus D.
    JOURNAL OF CO2 UTILIZATION, 2020, 41
  • [32] Multiscale modeling of the electrochemical reduction of CO2
    Bell, Alexis
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 255
  • [33] Reticular materials for electrochemical reduction of CO2
    Huang, Xiaofeng
    Zhang, Yue-Biao
    COORDINATION CHEMISTRY REVIEWS, 2021, 427
  • [34] Molecular tuning for electrochemical CO2 reduction
    Zhang, Jincheng
    Ding, Jie
    Liu, Yuhang
    Su, Chenliang
    Yang, Hongbin
    Huang, Yanqiang
    Liu, Bin
    JOULE, 2023, 7 (08) : 1700 - 1744
  • [35] Electrochemical reduction of CO2 at metallic electrodes
    Augustynski, J
    Kedzierzawski, P
    Jermann, B
    ADVANCES IN CHEMICAL CONVERSIONS FOR MITIGATING CARBON DIOXIDE, 1998, 114 : 107 - 116
  • [36] Modulating electrochemical CO2 reduction at interfaces
    Zhang, Jie
    Pan, Binbin
    Li, Yanguang
    SCIENCE BULLETIN, 2022, 67 (18) : 1844 - 1848
  • [37] Recent advances in electrochemical reduction of CO2
    Zhang, Fengtao
    Zhang, Hongye
    Liu, Zhimin
    CURRENT OPINION IN GREEN AND SUSTAINABLE CHEMISTRY, 2019, 16 : 77 - 84
  • [38] Modeling Operando Electrochemical CO2 Reduction
    Dattila, Federico
    Seemakurthi, Ranga Rohit
    Zhou, Yecheng
    Lopez, Nuria
    CHEMICAL REVIEWS, 2022, 122 (12) : 11085 - 11130
  • [39] Electrochemical Reduction of CO2 at Copper Nanofoams
    Sen, Sujat
    Liu, Dan
    Palmore, G. Tayhas R.
    ACS CATALYSIS, 2014, 4 (09): : 3091 - 3095
  • [40] Integrated electrochemical CO2 reduction and hydroformylation
    Jolly, Brandon J.
    Pung, Michael J.
    Liu, Chong
    DALTON TRANSACTIONS, 2024, 53 (47) : 18834 - 18838