Starch-mediated colloidal chemistry for highly reversible zinc-based polyiodide redox flow batteries
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
Author(s)
Related Research Unit(s)
Detail(s)
Original language | English |
---|---|
Article number | 3841 |
Journal / Publication | Nature Communications |
Volume | 15 |
Online published | 7 May 2024 |
Publication status | Published - 2024 |
Link(s)
DOI | DOI |
---|---|
Attachment(s) | Documents
Publisher's Copyright Statement
|
Link to Scopus | https://www.scopus.com/record/display.uri?eid=2-s2.0-85192346183&origin=recordpage |
Permanent Link | https://scholars.cityu.edu.hk/en/publications/publication(a1c2df0b-4cc5-467e-8e68-70fc8b8f1d2d).html |
Abstract
Aqueous Zn-I flow batteries utilizing low-cost porous membranes are promising candidates for high-power-density large-scale energy storage. However, capacity loss and low Coulombic efficiency resulting from polyiodide cross-over hinder the grid-level battery performance. Here, we develop colloidal chemistry for iodine-starch catholytes, endowing enlarged-sized active materials by strong chemisorption-induced colloidal aggregation. The size-sieving effect effectively suppresses polyiodide cross-over, enabling the utilization of porous membranes with high ionic conductivity. The developed flow battery achieves a high-power density of 42 mW cm−2 at 37.5 mA cm−2 with a Coulombic efficiency of over 98% and prolonged cycling for 200 cycles at 32.4 Ah L−1posolyte (50% state of charge), even at 50 °C. Furthermore, the scaled-up flow battery module integrating with photovoltaic packs demonstrates practical renewable energy storage capabilities. Cost analysis reveals a 14.3 times reduction in the installed cost due to the applicability of cheap porous membranes, indicating its potential competitiveness for grid energy storage. © The Author(s) 2024.
Research Area(s)
Citation Format(s)
Starch-mediated colloidal chemistry for highly reversible zinc-based polyiodide redox flow batteries. / Wei, Zhiquan; Huang, Zhaodong; Liang, Guojin et al.
In: Nature Communications, Vol. 15, 3841, 2024.
In: Nature Communications, Vol. 15, 3841, 2024.
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
Download Statistics
No data available