Direct Seawater Electrolysis: From Catalyst Design to Device Applications

被引:43
|
作者
Fei, Hao [1 ,2 ]
Liu, Ruoqi [1 ,2 ]
Liu, Tong [3 ,4 ]
Ju, Min [1 ]
Lei, Jia [1 ]
Wang, Ziyi [1 ]
Wang, Siyuan [1 ]
Zhang, Yunze [1 ]
Chen, Wen [5 ]
Wu, Zhuangzhi [2 ]
Ni, Meng [3 ,4 ]
Wang, Jian [1 ,6 ]
机构
[1] City Univ Hong Kong, Sch Energy & Environm, Kowloon, Hong Kong 999077, Peoples R China
[2] Cent South Univ, Sch Mat Sci & Engn, Changsha 410083, Peoples R China
[3] Hong Kong Polytech Univ, Res Inst Sustainable Urban Dev RISUD, Dept Bldg & Real Estate, Hong Kong 999077, Peoples R China
[4] Hong Kong Polytech Univ, Res Inst Smart Energy RISE, Hong Kong 999077, Peoples R China
[5] China Southern Power Grid Technol Co Ltd, Guangzhou 510000, Peoples R China
[6] City Univ Hong Kong, Shenzhen Res Inst, Shenzhen 518057, Peoples R China
基金
中国国家自然科学基金;
关键词
catalyst design; device application; direct seawater electrolysis; energy storage; review; EFFICIENT HYDROGEN EVOLUTION; SELECTIVE OXYGEN EVOLUTION; WATER ELECTROLYSIS; LOW-COST; HIGHLY EFFICIENT; ALKALINE; ELECTROCATALYSIS; PERFORMANCE; HYDROXIDE; PH;
D O I
10.1002/adma.202309211
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Direct seawater electrolysis (DSE) for hydrogen production, using earth-abundant seawater as the feedstock and renewable electricity as the driving source, paves a new opportunity for flexible energy conversion/storage and smooths the volatility of renewable energy. Unfortunately, the complex environments of seawater impose significant challenges on the design of DSE catalysts, and the practical performance of many current DSE catalysts remains unsatisfactory on the device level. However, many studies predominantly concentrate on the development of electrocatalysts for DSE without giving due consideration to the specific devices. To mitigate this gap, the most recent progress (mainly published within the year 2020-2023) of DSE electrocatalysts and devices are systematically evaluated. By discussing key bottlenecks, corresponding mitigation strategies, and various device designs and applications, the tremendous challenges in addressing the trade-off among activity, stability, and selectivity for DSE electrocatalysts by a single shot are emphasized. In addition, the rational design of the DSE electrocatalysts needs to align with the specific device configuration, which is more effective than attempting to comprehensively enhance all catalytic parameters. This work, featuring the first review of this kind to consider rational catalyst design in the framework of DSE devices, will facilitate practical DSE development. A systematic approach for rationally designing direct seawater electrolysis (DSE) electrocatalysts tailored for device applications is outlined, which entails two key steps: 1) considering the distinctive requirements in different setups to effectively bypass the trade-off among catalytic activity, selectivity, and stability; 2) adopting the mitigation strategies to enhance targeted performance, ultimately optimizing the practical DSE performance.image
引用
收藏
页数:29
相关论文
共 50 条
  • [21] Solar hydrogen production from seawater vapor electrolysis
    Kumari, Sudesh
    White, R. Turner
    Kumar, Bijandra
    Spurgeon, Joshua M.
    ENERGY & ENVIRONMENTAL SCIENCE, 2016, 9 (05) : 1725 - 1733
  • [22] Corrosion-resistant single-atom catalysts for direct seawater electrolysis
    Zhang, Yue
    Wan, Weikang
    Peng, Yudi
    Guo, Yujun
    Zhou, Jialing
    Wang, Shengchen
    Yuan, Jiayao
    Liao, Yuru
    Liu, Linsheng
    Zhang, Yifan
    Liu, Suli
    Wang, Dingsheng
    Dai, Zhihui
    NATIONAL SCIENCE REVIEW, 2025, 12 (04)
  • [23] Efficient and durable seawater electrolysis with a V2O3-protected catalyst
    Hu, Huashuai
    Zhang, Zhaorui
    Liu, Lijia
    Che, Xiangli
    Wang, Jiacheng
    Zhu, Ye
    Attfield, J. Paul
    Yang, Minghui
    SCIENCE ADVANCES, 2024, 10 (20):
  • [24] Renewable energy storage using hydrogen produced from seawater membrane-less electrolysis powered by triboelectric nanogenerators
    Elahi, Sohail
    Seddighi, Sadegh
    JOURNAL OF POWER SOURCES, 2024, 609
  • [25] Challenges and strategies in catalysts design towards efficient and durable alkaline seawater electrolysis for green hydrogen production
    Kim, Jaehyun
    Seo, Jin Ho
    Lee, Jae Kwan
    Oh, Myoung Hwan
    Jang, Ho Won
    ENERGY MATERIALS, 2025, 5 (07):
  • [26] Harnessing direct seawater electrolysis for a sustainable offshore Hydrogen future: A critical review and perspective
    Meharban, Faiza
    Tang, Xiangmin
    Yang, Shuang
    Wu, Xiaotong
    Lin, Chao
    Tan, Lei
    Hu, Weibo
    Zhou, Dequan
    Li, Jianming
    Li, Xiaopeng
    APPLIED ENERGY, 2025, 384
  • [27] Perspective on direct seawater electrolysis and electrodesalination: innovations and future directions for mining green X
    Moon, Gun-hee
    Lim, Jonghun
    Kim, Byeong-ju
    Han, Dong Suk
    Park, Hyunwoong
    GREEN CHEMISTRY, 2025, 27 (04)
  • [28] Harvesting energy from marine: Seawater electrolysis for hydrogen production
    Zhang, Weibo
    Wei, Yicui
    Li, Jingde
    Xiao, He
    FUEL, 2024, 377
  • [29] P-Ni4Mo Catalyst for Seawater Electrolysis with High Current Density and Durability
    Li, Gai
    Feng, Suyang
    Li, Jing
    Deng, Peilin
    Tian, Xinlong
    Wang, Chongtai
    Hua, Yingjie
    CHINESE JOURNAL OF STRUCTURAL CHEMISTRY, 2022, 41 (07) : 2207068 - 2207073
  • [30] Stable complete seawater electrolysis by using interfacial chloride ion blocking layer on catalyst surface
    Jadhav, Amol R.
    Kumar, Ashwani
    Lee, Jinju
    Yang, Taehun
    Na, Siyoung
    Lee, Jinsun
    Luo, Yongguang
    Liu, Xinghui
    Hwang, Yosep
    Liu, Yang
    Lee, Hyoyoung
    JOURNAL OF MATERIALS CHEMISTRY A, 2020, 8 (46) : 24501 - 24514