TY - JOUR
T1 - Extending the life-time of Zn-Br2 batteries by targeted local confinement of bromine complexes
AU - Ballas, Elad
AU - Leifer, Nicole
AU - Ohayon, Amit
AU - Barchichat, Keren
AU - Goobes, Gil
AU - Levi, Mikhael D.
AU - Shpigel, Netanel
AU - Wang, Guoxiu
AU - Noked, Malachi
AU - Aurbach, Doron
N1 - Publisher Copyright:
© 2026 The Authors.
PY - 2026/7
Y1 - 2026/7
N2 - Flowless zinc–bromine batteries (FL-ZBBs) are promising for grid-scale energy storage due to their high theoretical energy density and inherent safety. Yet, their practical implementation is hindered by rapid self-discharge, parasitic oxygen evolution, and limited solubility of bromine-complexing agents (BCAs) in aqueous media. Here, we present a Targeted Local Presence (TLP) strategy, in which hydrophobic BCAs are immobilized within porous activated carbon cloth (ACC) electrodes, forming confined water-repelling domains that stabilize bromine species and suppress side reactions. By systematically varying the alkyl-chain length of pyridinium based BCAs, we demonstrate control over the size of molecular aggregates and their interactions with polybromide ions, establishing a tunable framework linking molecular design to macroscopic electrochemical stability. Nuclear magnetic resonance (NMR) spectroscopy combined with electrochemical analysis confirms that this tunable confinement enhances bromine retention and reversibility. The optimized TLP cathodes deliver 200 mAh/g at 1 A g−1 with > 98% Coulombic efficiency over 1000 cycles and enable operation up to 2.7 V in 0.1 M ZnBr2 aqueous solutions. This work provides a scalable strategy that unites molecular-level design, electrodes’ architecture, and interfacial chemistry to advance durable, high-performance flowless Zn–Br2 batteries.
AB - Flowless zinc–bromine batteries (FL-ZBBs) are promising for grid-scale energy storage due to their high theoretical energy density and inherent safety. Yet, their practical implementation is hindered by rapid self-discharge, parasitic oxygen evolution, and limited solubility of bromine-complexing agents (BCAs) in aqueous media. Here, we present a Targeted Local Presence (TLP) strategy, in which hydrophobic BCAs are immobilized within porous activated carbon cloth (ACC) electrodes, forming confined water-repelling domains that stabilize bromine species and suppress side reactions. By systematically varying the alkyl-chain length of pyridinium based BCAs, we demonstrate control over the size of molecular aggregates and their interactions with polybromide ions, establishing a tunable framework linking molecular design to macroscopic electrochemical stability. Nuclear magnetic resonance (NMR) spectroscopy combined with electrochemical analysis confirms that this tunable confinement enhances bromine retention and reversibility. The optimized TLP cathodes deliver 200 mAh/g at 1 A g−1 with > 98% Coulombic efficiency over 1000 cycles and enable operation up to 2.7 V in 0.1 M ZnBr2 aqueous solutions. This work provides a scalable strategy that unites molecular-level design, electrodes’ architecture, and interfacial chemistry to advance durable, high-performance flowless Zn–Br2 batteries.
KW - BCAs
KW - Bromine complexing agents
KW - Rechargeable Zinc batteries
KW - Stationary Zn bromine batteries
KW - Targeted Local Presence (TLP)
KW - ZBBs
UR - https://www.scopus.com/pages/publications/105034988738
U2 - 10.1016/j.mattod.2026.103298
DO - 10.1016/j.mattod.2026.103298
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AN - SCOPUS:105034988738
SN - 1369-7021
VL - 96
JO - Materials Today
JF - Materials Today
M1 - 103298
ER -