Insights and prospects on the surface modification of zn metal anodes for aqueous rechargeable Zn-ion batteries

被引:0
作者
Sun, Xiaojuan [1 ]
Li, Chaowei [1 ]
Qian, Xinyi [1 ]
Gong, Lijie [1 ]
Cui, Danyao [1 ]
Ji, Qingyan [1 ]
Du, Weimin [1 ]
机构
[1] Anyang Normal Univ, Coll Chem & Chem Engn, Henan Prov Engn Res Ctr Chem Energy saving Mat Dev, Henan Key Lab New Optoelect Funct Mat, Anyang 455000, Henan, Peoples R China
关键词
Surface modification; Zn metal anodes; Modified techniques; Aqueous rechargeable Zn ions batteries; ZINC ANODE; LONG-LIFE; PERFORMANCE; CORROSION; STRATEGIES; PROTECTION;
D O I
10.1016/j.est.2025.117093
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Due to their abundance of inexpensive features, environmental sustainability, high security, and high capacity, aqueous rechargeable Zn-ion batteries (ARZIBs) leveraging Zn metal anodes exhibit promising application prospects in large-scale energy storage and have attracted significant attention over the past few years. However, the kinetic inhomogeneity of Zn deposition and thermodynamic instability of Zn metal anodes in aqueous electrolytes lead to persistent challenges, including Zn dendritic growth, hydrogen evolution reaction (HER), and surface passivation, which critically compromise the electrochemical performance and service life of ARZIBs. Given the strong correlation between these challenges and the surface physicochemical properties of Zn anodes, surface modification strategies have emerged as an effective solution to address these issues, leading to significantly improved electrochemical performance and extended service life in ARZIBs. First, this review establishes a systematic framework of these surface modification strategies and their underlying interrelationships. Second, it also discussed both the advantages and limitations of surface modification techniques, focusing particularly on approaches suitable for large-scale preparation. Furthermore, both the recent advances and related objective comments on the surface modification of Zn anodes are comprehensively reviewed. Finally, this review also highlights emerging research directions and future prospects in Zn metal anode surface modification, projected to drive further advancements in this field. This review offers a novel perspective for the design and fabrication of high-performance Zn metal anodes, thereby advancing the practical application and commercialization of ARZIBs.
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页数:23
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共 216 条
[111]   Research progress of interface protective layer materials in zinc anode [J].
Shi, Yue ;
Li, Le ;
Wang, Conghui ;
Jia, Shaofeng ;
Liu, Wanxin ;
Cao, Minghui ;
Ji, Yongqiang ;
Zhang, Dan .
JOURNAL OF ENERGY STORAGE, 2024, 80
[112]   Design of multifunctional interfaces on ceramic solid electrolytes for high-performance lithium-air batteries [J].
Shi, Yunxin ;
Guo, Ziyang ;
Wang, Changhong ;
Gao, Mingze ;
Lin, Xiaoting ;
Duan, Hui ;
Wang, Yonggang ;
Sun, Xueliang .
GREEN ENERGY & ENVIRONMENT, 2025, 10 (01) :183-192
[113]   Functional Aerogel Driven Synchronous Modulation of Zn2+ Interfacial Migration Behavior and Electrolyte Microenvironment Enables Highly Reversible Zn Anodes [J].
Shi, Zhenhai ;
Guo, Junhong ;
Liu, Zhuanyi ;
Xu, Zijian ;
Yu, Jiayi ;
Ren, Jianguo ;
Chen, Suli ;
Liu, Tianxi .
ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (45)
[114]   ZINC MANGANESE-DIOXIDE GALVANIC CELL USING ZINC-SULFATE AS ELECTROLYTE - RECHARGEABILITY OF THE CELL [J].
SHOJI, T ;
HISHINUMA, M ;
YAMAMOTO, T .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 1988, 18 (04) :521-526
[115]   A hydrophobic phenolic polymer layer with high-flux Zn2+-specific regular channels for stabilizing aqueous zinc anodes [J].
Shu, Tie ;
Yang, Xin ;
Huang, Zhou ;
Qiao, Min ;
Ning, Jiaoyi ;
Li, Kailin ;
Zhang, Yuxin ;
Li, Liang ;
Liu, Xin ;
Yao, Ke Xin .
JOURNAL OF MATERIALS CHEMISTRY A, 2024, 12 (08) :4666-4677
[116]   Synergistic Cooperation of Zn(002) Texture and Amorphous Zinc Phosphate for Dendrite-Free Zn Anodes [J].
Song, Xinxin ;
Bai, Linyu ;
Wang, Chenggang ;
Wang, Dongdong ;
Xu, Kun ;
Dong, Jingjing ;
Li, Yanlu ;
Shen, Qiang ;
Yang, Jian .
ACS NANO, 2023, 17 (15) :15113-15124
[117]   Blocking the Dendrite-Growth of Zn Anode by Constructing Ti4O7 Interfacial Layer in Aqueous Zinc-Ion Batteries [J].
Song, Yang ;
Liu, Yongduo ;
Luo, Shijian ;
Yang, Yuran ;
Chen, Fadong ;
Wang, Meng ;
Guo, Lin ;
Chen, Siguo ;
Wei, Zidong .
ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (25)
[118]   Protecting Zn anodes by atomic layer deposition of ZrO2 to extend the lifetime of aqueous Zn-ion batteries [J].
Sun, Shichen ;
Wen, Yeting ;
Billings, Aidan ;
Rajabi, Roya ;
Wang, Boyu ;
Zhang, Kangkang ;
Huang, Kevin .
ENERGY ADVANCES, 2024, 3 (01) :299-306
[119]   Construction of Selective Ion Transport Polymer at Anode-Electrolyte Interface for Stable Aqueous Zinc-Ion Batteries [J].
Sun, Xuan ;
Lv, Xiaowei ;
Zhang, Man ;
Shi, Keqing ;
Li, Zhujie ;
Pan, Xinhui ;
Lian, Tong ;
Chen, Renjie ;
Wu, Feng ;
Li, Li .
ACS NANO, 2024, 18 (11) :8452-8462
[120]   Recent Advances in hybrid Aqueous-Organic electrolytes for Zinc-Ion batteries [J].
Tan, Leihang ;
Lin, Yuexing ;
Zhong, Ziyou ;
Yang, Gongzheng ;
Wang, Chengxin .
CHEMICAL ENGINEERING JOURNAL, 2024, 502