中文版 | English
题名

Reversible solid-liquid conversion enabled by self-capture effect for stable non-flow zinc-bromine batteries

作者
通讯作者Xu, Xijin
发表日期
2023
DOI
发表期刊
ISSN
2096-2797
EISSN
2468-0257
卷号9期号:6页码:1035-1044
摘要
Non-flow aqueous zinc-bromine batteries without auxiliary components (e.g., pumps, pipes, storage tanks) and ion-selective membranes represent a cost-effective and promising technology for large-scale energy storage. Unfortunately, they generally suffer from serious diffusion and shuttle of polybromide (Br, Br3) due to the weak physical adsorption between soluble polybromide and host carbon materials, which results in low energy efficiency and poor cycling stability. Here, we develop a novel self-capture organic bromine material (1,1′-bis [3-(trimethylammonio)propyl]-4,4′-bipyridinium bromine, NVBr4) to successfully realize reversible solid complexation of bromide components for stable non-flow zinc-bromine battery applications. The quaternary ammonium groups (NV4+ ions) can effectively capture the soluble polybromide species based on strong chemical interaction and realize reversible solid complexation confined within the porous electrodes, which transforms the conventional "liquid–liquid" conversion of soluble bromide components into "liquid–solid" model and effectively suppresses the shuttle effect. Thereby, the developed non-flow zinc-bromide battery provides an outstanding voltage platform at 1.7 V with a notable specific capacity of 325 mAh g−1NVBr4 (1 A g−1), excellent rate capability (200 mAh g−1NVBr4 at 20 A g−1), outstanding energy density of 469.6 Wh kg−1 and super-stable cycle life (20,000 cycles with 100% Coulombic efficiency), which outperforms most of reported zinc-halogen batteries. Further mechanism analysis and DFT calculations demonstrate that the chemical interaction of quaternary ammonium groups and bromide species is the main reason for suppressing the shuttle effect. The developed strategy can be extended to other halogen batteries to obtain stable charge storage.
© 2022 Institute of Process Engineering, Chinese Academy of Sciences
关键词
相关链接[Scopus记录]
收录类别
EI ; SCI
语种
英语
学校署名
其他
资助项目
We acknowledge the financial support from the Guangdong Basic and Applied Basic Research Foundation (grant number: 2019A1515011819 , 2021B1515120004 ), National Natural Science Foundation of China ( 22005207 ) and Open Research Fund of Songshan Lake Materials Laboratory ( 2021SLABFN04 ).
出版者
EI入藏号
20230513467480
EI主题词
Bromine ; Bromine compounds ; Electrodes ; Energy efficiency ; Flow batteries ; Storage (materials) ; Zinc compounds
EI分类号
Energy Conservation:525.2 ; Storage:694.4 ; Secondary Batteries:702.1.2 ; Inorganic Compounds:804.2 ; Industrial Economics:911.2
Scopus记录号
2-s2.0-85146917477
来源库
EV Compendex
引用统计
被引频次[WOS]:16
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/519695
专题工学院_系统设计与智能制造学院
工学院_材料科学与工程系
作者单位
1.School of Physics and Technology, University of Jinan, Shandong, 250022, China
2.Songshan Lake Materials Laboratory, Guangdong, Dongguan; 523808, China
3.Department of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Hong Kong
4.Faculty of Materials Science and Engineering and Low Dimensional Energy Materials Research Center, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Guangdong, Shenzhen; 518055, China
5.School of System Design and Intelligent Manufacturing, Southern University of Science and Technology, Guangdong, Shenzhen; 518055, China
推荐引用方式
GB/T 7714
Zhang, Xixi,Wang, Xiaoke,Qu, Guangmeng,et al. Reversible solid-liquid conversion enabled by self-capture effect for stable non-flow zinc-bromine batteries[J]. Green Energy & Environment,2023,9(6):1035-1044.
APA
Zhang, Xixi.,Wang, Xiaoke.,Qu, Guangmeng.,Wang, Tairan.,Zhao, Xiliang.,...&Li, Hongfei.(2023).Reversible solid-liquid conversion enabled by self-capture effect for stable non-flow zinc-bromine batteries.Green Energy & Environment,9(6),1035-1044.
MLA
Zhang, Xixi,et al."Reversible solid-liquid conversion enabled by self-capture effect for stable non-flow zinc-bromine batteries".Green Energy & Environment 9.6(2023):1035-1044.
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