Organo-interhalogen chemistry enables high-voltage bromine redox for stable zinc batteries

Abstract

High-voltage Br3/Br+ redox offers promise for energetic aqueous Zn batteries, yet its reliance on Cl-concentration usually causes severe Zn pitting and battery decay. Herein, we initiate an organo–interhalogen pathway to fast and stable Br3/Br+ redox, eliminating the Cl-concentration reliance. Chloroacetone (CA), as an organic interhalogen bonding receptor, efficiently binds the activated Br+ intermediate, forming a stable organo–interhalogen adduct. Compared with the conventional Cl-mediated pathway, this new pathway simultaneously lowers the Br3/Br+ redox barrier and reduces the axial σ-site activity of interhalogens. Additionally, CA raises the Cl2 evolution reaction (CER) potential of the electrolyte and averts Zn pitting. Consequently, a Zn‖TBABr3 battery leveraging cascaded Br/Br3/Br+ conversion exhibits a high specific capacity (508 mAh g−1) and dual plateaus (Br3/Br+: 2.0 V; Br/Br3: 1.7 V). With PEG 200 as an electrolyte co-solvent, a lifespan of over 1000 cycles, a high-rate capability of up to 10 A g−1 and high energy/power densities (848 Wh kg−1/19.7 kW kg−1) are further achieved. This work establishes a feasible organo–interhalogen pathway to unlock multi-electron halogen redox for high-energy aqueous batteries.

Graphical abstract: Organo-interhalogen chemistry enables high-voltage bromine redox for stable zinc batteries

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Article information

Article type
Paper
Submitted
30 Sep 2025
Accepted
30 Jan 2026
First published
16 Feb 2026

Energy Environ. Sci., 2026, Advance Article

Organo-interhalogen chemistry enables high-voltage bromine redox for stable zinc batteries

H. Huang, Z. Shi, L. Chen, J. Qi, Z. Feng, G. Liu, M. Ye, Y. Zhang, Z. Wen, X. Liu, Y. Wei, Y. Tang and C. C. Li, Energy Environ. Sci., 2026, Advance Article , DOI: 10.1039/D5EE05816C

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