Time Transient Electrochemical Monitoring of Tetraalkylammonium Polybromide Solid Particle Formation: Observation of Ionic Liquid-to-Solid Transitions
- Authors
- Choi, Yejin; Hwang, Jiseon; Kim, Kyung Mi; Jana, Saibal; Lee, Sang Uck; Chae, Junghyun; Chang, Jinho
- Issue Date
- May-2019
- Publisher
- American Chemical Society
- Citation
- Analytical Chemistry, v.91, no.9, pp 5850 - 5857
- Pages
- 8
- Indexed
- SCI
SCIE
SCOPUS
- Journal Title
- Analytical Chemistry
- Volume
- 91
- Number
- 9
- Start Page
- 5850
- End Page
- 5857
- URI
- https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/2935
- DOI
- 10.1021/acs.analchem.9b00190
- ISSN
- 0003-2700
1520-6882
- Abstract
- Energy storage systems (ESSs) using a Br-/Br-2 redox reaction such as a Zn/Br redox flow battery (RFB) or a redox-enhanced electrochemical capacitor (Redox-EC) suffer from self-discharge reactions resulting in significant Coulombic loss. To inhibit the self-discharge, quaternary ammonium (Q(+)) and tetraalkylammonium (T+) bromide are added to form ionic liquid (QBr(2n+1)) and solid (TBr3) polybromides during the ESS charging process. The electrochemical formation of liquid QBr(2n+1) and its electrochemical properties have been examined. The detailed mechanisms of ionic solid TBr3 formation, however, have not yet been explored. In this article, we analyzed the ionic liquid-to-solid phase transition of TBr3 particles using a time transient electrochemical method. We suggest the formation of ionic solid TBr3 particles via hydrated TBr3 droplets as an intermediate phase, which are generated by electro-oxidation of Br- in an aqueous TBr solution. We found the phase transition time of TBr3 particles is strongly dependent on the chemical structure of T+ and the concentration of TBr in an aqueous solution.
- Files in This Item
-
Go to Link
- Appears in
Collections - COLLEGE OF SCIENCE AND CONVERGENCE TECHNOLOGY > DEPARTMENT OF CHEMICAL AND MOLECULAR ENGINEERING > 1. Journal Articles

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