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Starch-mediated colloidal chemistry for highly reversible zinc-based polyiodide redox flow batteries

Engineering and Technology

Starch-mediated colloidal chemistry for highly reversible zinc-based polyiodide redox flow batteries

Z. Wei, Z. Huang, et al.

Discover the breakthrough in aqueous Zn-I flow batteries, developed by Zhiquan Wei and colleagues, featuring innovative iodine-starch catholytes that dramatically enhance performance and efficiency. With impressive power density, high Coulombic efficiency, and significant cost reduction, this research paves the way for sustainable energy storage solutions.

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~3 min • Beginner • English
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 cm² at 37.5 mA cm² with a Coulombic efficiency of over 98% and prolonged cycling for 200 cycles at 32.4 Ah L⁻¹ posolyte (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.
Publisher
Nature Communications
Published On
May 07, 2024
Authors
Zhiquan Wei, Zhaodong Huang, Guojin Liang, Yiqiao Wang, Shixun Wang, Yihan Yang, Tao Hu, Chunyi Zhi
Tags
Zn-I flow batteries
porous membranes
iodine-starch catholytes
Coulombic efficiency
energy storage
power density
renewable energy
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