An organic imidazolium derivative additive inducing fast and highly reversible redox reactions in zinc-bromine flow batteriesopen access
- Authors
- Lee, Youngho; Yun, Deokhee; Park, Junyoung; Hwang, Gyungmin; Chung, Daewon; Kim, Miae; Jeon, Joonhyeon
- Issue Date
- Nov-2022
- Publisher
- ELSEVIER
- Keywords
- Energy storage system; Zn -Br redox Flow battery; Bromine complexing agent; Steric hindrance; Zinc plating uniformity
- Citation
- Journal of Power Sources, v.547, pp 1 - 17
- Pages
- 17
- Indexed
- SCIE
SCOPUS
- Journal Title
- Journal of Power Sources
- Volume
- 547
- Start Page
- 1
- End Page
- 17
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/2215
- DOI
- 10.1016/j.jpowsour.2022.232007
- ISSN
- 0378-7753
1873-2755
- Abstract
- In zinc-bromine redox flow batteries (ZBBs), the weak molecular structure and stability of bromine-complexing agent (BCA) can sometime negatively affect battery's performance. To address this issue, this paper introduces a 1,2-dimethyl-3-ethylimidazolium bromide (DMEIm center dot Br, C7H13BrN2), comprising planar molecular structure with strong molecular-polarizability and low steric hindrance. The effectiveness of the DMEIm center dot Br is compared and verified with those of two popular BCAs through various electrochemical experiments including full-cell tests for 200 cycles. Experimental results show that the DMEIm center dot Br significantly contributes to apparently enhancing reaction kinetics and reversibility of Zn2+/Zn((s) )and Br-/Br-2 redox couples by inducing highly reversible zinc-plating/stripping (by strong electrostatic shielding effect) and bromine-capture/release (along with strong bromine-binding strength) in anolyte and catholyte solutions, respectively. The superior chemical and electro-chemical properties are clearly demonstrated by the fact that the DMEIm center dot Br-supported solution in ZBBs exhibits 5.53 (24.19) and 7.29 (16.99) % higher current and voltaic efficiencies than the pristine solution at the tem-perature of 25 (60) ?C, respectively. It also exhibits remarkably improved discharge-capacity retention of averagely 99.17% for 200 cycles along with a slight discharge-capacity loss of only 1.46% vs. 1st cycle at 200th cycle, even at the high temperature of 60 ?C.
- Files in This Item
- There are no files associated with this item.
- Appears in
Collections - College of Engineering > Department of Electronics and Electrical Engineering > 1. Journal Articles

Items in ScholarWorks are protected by copyright, with all rights reserved, unless otherwise indicated.