Electrocatalytic seawater splitting: Nice designs, advanced strategies, challenges and perspectives

被引:143
作者
Liang, Jie [1 ]
Li, Zixiao [1 ]
He, Xun [1 ]
Luo, Yongsong [1 ]
Zheng, Dongdong [1 ]
Wang, Yan [1 ]
Li, Tingshuai [1 ]
Ying, Binwu [1 ]
Sun, Shengjun [2 ]
Cai, Zhengwei [2 ]
Liu, Qian [3 ]
Tang, Bo [2 ,4 ]
Sun, Xuping [1 ,2 ]
机构
[1] Univ Elect Sci & Technol China, Inst Fundamental & Frontier Sci, Chengdu 610054, Sichuan, Peoples R China
[2] Shandong Normal Univ, Coll Chem Chem Engn & Mat Sci, Jinan 250014, Shandong, Peoples R China
[3] Chengdu Univ, Inst Adv Study, Chengdu 610106, Sichuan, Peoples R China
[4] Laoshan Lab, Qingdao 266237, Shandong, Peoples R China
基金
中国国家自然科学基金;
关键词
Green hydrogen economy; Seawater electrolysis; Electrocatalysts; Self-reconstruction; Membrane; CHLORINE EVOLUTION REACTION; SELECTIVE OXYGEN EVOLUTION; HYDROGEN EVOLUTION; ROBUST ELECTROCATALYSTS; EXPERIMENTAL VALIDATION; WATER DISSOCIATION; SINGLE-ATOM; NIFE-LDH; PH RANGE; LOW-COST;
D O I
10.1016/j.mattod.2023.08.024
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
H2 has a sufficiently high energy density and a combustion process that emits no carbon, therefore being an appealing storable alternative to fossil fuels. With evident advantages of seawater resources available worldwide, electrochemically making H2 from seawater holds a great development prospect towards the global deployment of H2-based energy plants. However, with current water splitting technologies, this is not an easy task, and the primary obstacle is impurities in natural seawater including halide salts, magnesium salts, organic matter, etc., which readily cause the electrocatalysis systems to shut down. We herein present a timely review of seawater electrolysis systems at both lab -scale fundamental research and pilot-scale reactor level on the basis of most representative studies. We analyze some of the crucial experimental details that are frequently ignored, such as seawater treatments, product detection, electrode assembly, reactors, electrolyte feeding modes, etc. We then systematically emphasize the latest and representative strategies and catalytic materials designs as well as whether corresponding electrodes are genuinely stable as two key quests to find out truly reliable and exploitable electrode engineering. Gas release behaviors/kinetics at high reaction rates are highlighted as well. In addition, we introduce valuable contents like how to learn from ocean life for electrocatalytic system design. We conclude by taking a look at the future research directions and opportunities for encouraging more practical applications of seawater electrolysis systems/ technologies.
引用
收藏
页码:193 / 235
页数:43
相关论文
共 205 条
[21]   In situ Supported Nanoscale RuxTi1-xO2 on Anatase TiO2 with Improved Electroactivity [J].
Chen, Ruiyong ;
Trieu, Vinh ;
Natter, Harald ;
Stoewe, Klaus ;
Maier, Wilhelm F. ;
Hempelmann, Rolf ;
Bulan, Andreas ;
Kintrup, Juergen ;
Weber, Rainer .
CHEMISTRY OF MATERIALS, 2010, 22 (23) :6215-6217
[22]   Boride-based electrocatalysts: Emerging candidates for water splitting [J].
Chen, Zhijie ;
Duan, Xiaoguang ;
Wei, Wei ;
Wang, Shaobin ;
Zhang, Zejie ;
Ni, Bing-Jie .
NANO RESEARCH, 2020, 13 (02) :293-314
[23]   Heterogeneous lamellar-edged Fe-Ni(OH)2/Ni3S2 nanoarray for efficient and stable seawater oxidation [J].
Cui, Baihua ;
Hu, Zheng ;
Liu, Chang ;
Liu, Siliang ;
Chen, Fangshuai ;
Hu, Shi ;
Zhang, Jinfeng ;
Zhou, Wei ;
Deng, Yida ;
Qin, Zhenbo ;
Wu, Zhong ;
Chen, Yanan ;
Cui, Lifeng ;
Hu, Wenbin .
NANO RESEARCH, 2021, 14 (04) :1149-1155
[24]   Optimal operating parameters for advanced alkaline water electrolysis [J].
de Groot, Matheus T. ;
Kraakman, Joost ;
Barros, Rodrigo Lira Garcia .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (82) :34773-34783
[25]  
Ding R, 2021, GREEN CHEM, V23, P4551, DOI [10.1039/d1gc00574j, 10.1039/D1GC00574J]
[26]   Tapping hydrogen fuel from the ocean: A review on photocatalytic, photoelectrochemical and electrolytic splitting of seawater [J].
Dingenen, Fons ;
Verbruggen, Sammy W. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 142
[27]   Design Criteria, Operating Conditions, and Nickel-Iron Hydroxide Catalyst Materials for Selective Seawater Electrolysis [J].
Dionigi, Fabio ;
Reier, Tobias ;
Pawolek, Zarina ;
Gliech, Manuel ;
Strasser, Peter .
CHEMSUSCHEM, 2016, 9 (09) :962-972
[28]   Efficient direct seawater electrolysers using selective alkaline NiFe-LDH as OER catalyst in asymmetric electrolyte feeds [J].
Dresp, Soeren ;
Ngo Thanh, Trung ;
Klingenhof, Malte ;
Brueckner, Sven ;
Hauke, Philipp ;
Strasser, Peter .
ENERGY & ENVIRONMENTAL SCIENCE, 2020, 13 (06) :1725-1729
[29]   Direct Electrolytic Splitting of Seawater: Opportunities and Challenges [J].
Dresp, Soeren ;
Dionigi, Fabio ;
Klingenhof, Malte ;
Strasser, Peter .
ACS ENERGY LETTERS, 2019, 4 (04) :933-942
[30]   Surface Reconstruction of Ni-Fe Layered Double Hydroxide Inducing Chloride Ion Blocking Materials for Outstanding Overall Seawater Splitting [J].
Enkhtuvshin, Enkhbayar ;
Yeo, Sunghwan ;
Choi, Hyojeong ;
Kim, Kang Min ;
An, Byeong-Seon ;
Biswas, Swarup ;
Lee, Yongju ;
Nayak, Arpan Kumar ;
Jang, Jin Uk ;
Na, Kyeong-Han ;
Choi, Won-Youl ;
Ali, Ghulam ;
Chae, Keun Hwa ;
Akbar, Muhammad ;
Chung, Kyung Yoon ;
Yoo, Kyoungmin ;
Chung, Yong-Chae ;
Shin, Tae Ho ;
Kim, Hyeok ;
Chung, Chan-Yeup ;
Han, HyukSu .
ADVANCED FUNCTIONAL MATERIALS, 2023, 33 (22)