Design Strategies of Hydrogen Evolution Reaction Nano Electrocatalysts for High Current Density Water Splitting

被引:6
作者
Zang, Bao [1 ,2 ]
Liu, Xianya [1 ,2 ]
Gu, Chen [1 ,2 ]
Chen, Jianmei [1 ,2 ]
Wang, Longlu [1 ,2 ]
Zheng, Weihao [3 ,4 ]
机构
[1] Nanjing Univ Posts & Telecommun, Coll Elect & Opt Engn, Nanjing 210023, Peoples R China
[2] Nanjing Univ Posts & Telecommun, Coll Flexible Elect Future Technol, Nanjing 210023, Peoples R China
[3] Natl Univ Def Technol, Coll Adv Interdisciplinary Studies, Changsha 410073, Peoples R China
[4] Natl Univ Def Technol, Hunan Prov Key Lab Novel Nano Optoelect Informat M, Changsha 410073, Peoples R China
关键词
high current density; hydrogen evolution reaction; electrocatalyst; water splitting; EFFICIENT; ELECTROLYSIS; ELECTRODES; NANOSHEETS;
D O I
10.3390/nano14141172
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Hydrogen is now recognized as the primary alternative to fossil fuels due to its renewable, safe, high-energy density and environmentally friendly properties. Efficient hydrogen production through water splitting has laid the foundation for sustainable energy technologies. However, when hydrogen production is scaled up to industrial levels, operating at high current densities introduces unique challenges. It is necessary to design advanced electrocatalysts for hydrogen evolution reactions (HERs) under high current densities. This review will briefly introduce the challenges posed by high current densities on electrocatalysts, including catalytic activity, mass diffusion, and catalyst stability. In an attempt to address these issues, various electrocatalyst design strategies are summarized in detail. In the end, our insights into future challenges for efficient large-scale industrial hydrogen production from water splitting are presented. This review is expected to guide the rational design of efficient high-current density water electrolysis electrocatalysts and promote the research progress of sustainable energy.
引用
收藏
页数:23
相关论文
共 126 条
[1]   Perovskite for Electrocatalytic Oxygen Evolution at Elevated Temperatures [J].
Abdelghafar, Fatma ;
Xu, Xiaomin ;
Jiang, San Ping ;
Shao, Zongping .
CHEMSUSCHEM, 2024, 17 (15)
[2]   Designing single-atom catalysts toward improved alkaline hydrogen evolution reaction [J].
Abdelghafar, Fatma ;
Xu, Xiaomin ;
Jiang, San Ping ;
Shao, Zongping .
MATERIALS REPORTS: ENERGY, 2022, 2 (03)
[3]   Boosting the electrocatalytic activity of NiSe by introducing MnCo as an efficient heterostructured electrocatalyst for large-current-density alkaline seawater splitting [J].
Andaveh, Reza ;
Rouhaghdam, Alireza Sabour ;
Ai, Jianping ;
Maleki, Meysam ;
Wang, Kun ;
Seif, Abdolvahab ;
Darband, Ghasem Barati ;
Li, Jinyang .
APPLIED CATALYSIS B-ENVIRONMENT AND ENERGY, 2023, 325
[4]   Superaerophobic Polyethyleneimine Hydrogels for Improving Electrochemical Hydrogen Production by Promoting Bubble Detachment [J].
Bae, Misol ;
Kang, Yunseok ;
Lee, Dong Woog ;
Jeon, Dasom ;
Ryu, Jungki .
ADVANCED ENERGY MATERIALS, 2022, 12 (29)
[5]   Self-Supported Ru-Incorporated NiSe2 for Ampere-Level Current Density Hydrogen Evolution [J].
Bai, Yu ;
Zhang, Huaiyu ;
Lu, Xue ;
Wang, Liang ;
Zou, Yan ;
Miao, Juhong ;
Qiao, Man ;
Tang, Yujia ;
Zhu, Dongdong .
CHEMISTRY-A EUROPEAN JOURNAL, 2023, 29 (28)
[6]   Heterostructured Mo2N-Mo2C Nanoparticles Coupled with N-Doped Carbonized Wood to Accelerate the Hydrogen Evolution Reaction [J].
Bang, Jangwon ;
Moon, In Kyu ;
Kim, Young-Kwang ;
Oh, Jungwoo .
SMALL STRUCTURES, 2023, 4 (08)
[7]   Platinum-Ruthenium Dual-Atomic Sites Dispersed in Nanoporous Ni0.85Se Enabling Ampere-Level Current Density Hydrogen Production [J].
Cai, Lebin ;
Bai, Haoyun ;
Kao, Cheng-wei ;
Jiang, Kang ;
Pan, Hui ;
Lu, Ying-Rui ;
Tan, Yongwen .
SMALL, 2024, 20 (26)
[8]   One-Step Approach for Constructing High-Density Single-Atom Catalysts toward Overall Water Splitting at Industrial Current Densities [J].
Cao, Dong ;
Zhang, Zhirong ;
Cui, Yahui ;
Zhang, Runhao ;
Zhang, Lipeng ;
Zeng, Jie ;
Cheng, Daojian .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2023, 62 (09)
[9]   Industrial hydrogen production technology and development status in China: a review [J].
Chai, Siqi ;
Zhang, Guojie ;
Li, Guoqiang ;
Zhang, Yongfa .
CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY, 2021, 23 (07) :1931-1946
[10]   Constructing superhydrophilic CoRu-LDH/PANI nanowires with optimized electronic structure for hydrogen evolution reaction [J].
Chen, Jiexin ;
Luo, Xingxin ;
Zhang, Hanwen ;
Liang, Xianxi ;
Xiao, Kang ;
Ouyang, Ting ;
Dan, Meng ;
Liu, Zhao-Qing .
ELECTROCHIMICA ACTA, 2023, 439