Multi-Ion Engineering Strategies toward High Performance Aqueous Zinc-Based Batteries

被引:67
作者
Yue, Jiasheng [1 ]
Chen, Shi [1 ]
Yang, Jingjing [1 ]
Li, Shuqiang [1 ]
Tan, Guoqiang [1 ]
Zhao, Ran [1 ]
Wu, Chuan [1 ,2 ]
Bai, Ying [1 ,2 ]
机构
[1] Beijing Inst Technol, Sch Mat Sci & Engn, Beijing Key Lab Environm Sci & Engn, Beijing 100081, Peoples R China
[2] Beijing Inst Technol, Yangtze Delta Reg Acad, Jiaxing 314019, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
aqueous zinc-based batteries (AZBs); classification; insertion type; multi-ion engineering strategies; redox type; Zn metal; AL3+ STORAGE MECHANISM; HIGH-ENERGY DENSITY; ZN-ION BATTERY; MANGANESE-DIOXIDE; CATHODE MATERIAL; RECHARGEABLE BATTERY; FLOW BATTERY; LOW-COST; POSITIVE ELECTRODE; SECONDARY BATTERY;
D O I
10.1002/adma.202304040
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
As alternatives to batteries with organic electrolytes, aqueous zinc-based batteries (AZBs) have been intensively studied. However, the sluggish kinetics, side reactions, structural collapse, and dissolution of the cathode severely compromise the commercialization of AZBs. Among various strategies to accelerate their practical applications, multi-ion engineering shows great feasibility to maintain the original structure of the cathode and provide sufficient energy density for high-performance AZBs. Though multi-ion engineering strategies could solve most of the problems encountered by AZBs and show great potential in achieving practical AZBs, the comprehensive summaries of the batteries undergo electrochemical reactions involving more than one charge carrier is still in deficiency. The ambiguous nomenclature and classification are becoming the fountainhead of confusion and chaos. In this circumstance, this review overviews all the battery configurations and the corresponding reaction mechanisms are investigated in the multi-ion engineering of aqueous zinc-based batteries. By combing through all the reported works, this is the first to nomenclate the different configurations according to the reaction mechanisms of the additional ions, laying the foundation for future unified discussions. The performance enhancement, fundamental challenges, and future developing direction of multi-ion strategies are accordingly proposed, aiming to further accelerate the pace to achieve the commercialization of AZBs with high performance. This review systematically summarizes and names various types of multi-ion engineering strategies. The recent advances of aqueous multi-ion zinc-based batteries are presented, and the reaction mechanisms, application effects, merits, and disadvantages of different multi-ion strategies are comprehensively evaluated to provide guidance for the development of ideal aqueous multi-ion zinc-based batteries.image
引用
收藏
页数:38
相关论文
共 228 条
[1]   Fabrication of Zinc Anodes for Aqueous Lithium-Ion Batteries by Supersonic Cold Spraying [J].
Ahmed, Moin ;
Yazdi, Alireza Z. ;
Dayani, Siavash B. ;
Jahed, Hamid ;
Chen, P. .
CHEMELECTROCHEM, 2019, 6 (05) :1333-1337
[2]   Electrochemical Zinc Intercalation in Lithium Vanadium Oxide: A High-Capacity Zinc-Ion Battery Cathode [J].
Alfaruqi, Muhammad H. ;
Mathew, Vinod ;
Song, Jinju ;
Kim, Sungjin ;
Islam, Saiful ;
Pham, Duong Tung ;
Jo, Jeonggeun ;
Kim, Seokhun ;
Baboo, Joseph Paul ;
Xiu, Zhiliang ;
Lee, Kug-Seung ;
Sun, Yang-Kook ;
Kim, Jaekook .
CHEMISTRY OF MATERIALS, 2017, 29 (04) :1684-1694
[3]   Electrochemically Induced Structural Transformation in a γ-MnO2 Cathode of a High Capacity Zinc-Ion Battery System [J].
Alfaruqi, Muhammad H. ;
Mathew, Vinod ;
Gim, Jihyeon ;
Kim, Sungjin ;
Song, Jinju ;
Baboo, Joseph P. ;
Choi, Sun H. ;
Kim, Jaekook .
CHEMISTRY OF MATERIALS, 2015, 27 (10) :3609-3620
[4]   High-Voltage and Super-Stable Aqueous Sodium-Zinc Hybrid Ion Batteries Enabled by Double Solvation Structures in Concentrated Electrolyte [J].
Ao, Huaisheng ;
Zhu, Weiduo ;
Liu, Mengke ;
Zhang, Wanqun ;
Hou, Zhiguo ;
Wu, Xiaojun ;
Zhu, Yongchun ;
Qian, Yitai .
SMALL METHODS, 2021, 5 (07)
[5]   Building better batteries [J].
Armand, M. ;
Tarascon, J. -M. .
NATURE, 2008, 451 (7179) :652-657
[6]   MOFs-derived porous Mn2O3 as high-performance anode material for Li-ion battery [J].
Bai, Zhongchao ;
Zhang, Yaohui ;
Zhang, Yuwen ;
Guo, Chunli ;
Tang, Bin ;
Sun, Di .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (10) :5266-5269
[7]   Nano Prussian Yellow Film Modified Electrode: A Cathode Material for Aqueous Potassium Ion Secondary Battery with Zinc Anode [J].
Baioun, Abeer ;
Kellawi, Hassan ;
Falah, Ahamed .
CURRENT NANOSCIENCE, 2018, 14 (03) :227-233
[8]   Progress in Aqueous Rechargeable Sodium-Ion Batteries [J].
Bin, Duan ;
Wang, Fei ;
Tamirat, Andebet Gedamu ;
Suo, Liumin ;
Wang, Yonggang ;
Wang, Chunsheng ;
Xia, Yongyao .
ADVANCED ENERGY MATERIALS, 2018, 8 (17)
[9]   Minimal architecture zinc-bromine battery for low cost electrochemical energy storage [J].
Biswas, Shaurjo ;
Senju, Aoi ;
Mohr, Robert ;
Hodson, Thomas ;
Karthikeyan, Nivetha ;
Knehr, Kevin W. ;
Hsieh, Andrew G. ;
Yang, Xiaofang ;
Koel, Bruce E. ;
Steingart, Daniel A. .
ENERGY & ENVIRONMENTAL SCIENCE, 2017, 10 (01) :114-120
[10]   Scientific Challenges for the Implementation of Zn-Ion Batteries [J].
Blanc, Lauren E. ;
Kundu, Dipan ;
Nazar, Linda F. .
JOULE, 2020, 4 (04) :771-799