Carbon‐Encapsulated Gemini Ionic Liquid as Advanced Bromine Hosts for High‐Performance Zn–Br <sub>2</sub> Batteries

V Vishwakarma Ravikumar Ramlal (Department of Chemical Sciences Ariel University Ariel Israel) E Elayaperumal Sujithkrishnan (Department of Chemical Sciences Ariel University Ariel Israel) L Langyuan Wu (Department of Chemical Sciences, Ariel University) S Sakengali Kazhiyev (Department of Mechanical Engineering The University of Alabama Tuscaloosa Alabama USA) S Subramanian Sowmya (Department of Chemical Sciences Ariel University Ariel Israel) P Pradip Mamilwad (Department of Chemical Sciences Ariel University Ariel Israel) S Sagiv Weintraub (Department of Chemical Sciences Ariel University Ariel Israel) A Amey Nimkar (Department of Chemistry Bar Ilan University Ramat Gan Israel) Z Zhou Yu (Department of Chemical and Biomolecular Engineering) D Daniel Sharon (Institute of Chemistry Hebrew University of Jerusalem Jerusalem Israel) N Netanel Shpigel (Department of Chemical Sciences, Ariel University)

Abstract

ABSTRACT Zinc–bromine (Zn–Br 2 ) batteries represent a promising aqueous energy storage technology, yet their widespread deployment is hindered by the uncontrolled diffusion of molecular bromine from the cathode side, leading to severe self‐discharge and capacity fading. Here, we demonstrate an effective strategy to mitigate bromine crossover by employing gemini‐type bromine complexing agents (BCAs) impregnated into porous carbon hosts in their oily phase. This approach facilitates the in situ conversion of bromine into a water‐immiscible polybromide BCA phase, thereby confining the active species within the electrode structure. The presence of aromatic linkers in the gemini BCA molecules significantly enhance their retention in the carbon network, most likely through π – π stacking interactions with the carbon framework. Moreover, controlled discharge protocols enabled preferential nucleation of polybromide domains within the confined pore environment, further improving the self‐discharge stability of the system. As a result, the Zn–Br 2 cells incorporating gemini‐type BCAs exhibited suppressed bromine crossover, enhanced coulombic efficiency, and superior cycling durability compared to conventional systems. This work provides mechanistic insights and practical guidelines for the rational design of molecular complexants and electrode architectures for next‐generation Zn–Br 2 batteries.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 21, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

V

Vishwakarma Ravikumar Ramlal

Department of Chemical Sciences Ariel University Ariel Israel

E

Elayaperumal Sujithkrishnan

Department of Chemical Sciences Ariel University Ariel Israel

L

Langyuan Wu

Department of Chemical Sciences, Ariel University

S

Sakengali Kazhiyev

Department of Mechanical Engineering The University of Alabama Tuscaloosa Alabama USA

S

Subramanian Sowmya

Department of Chemical Sciences Ariel University Ariel Israel

P

Pradip Mamilwad

Department of Chemical Sciences Ariel University Ariel Israel

S

Sagiv Weintraub

Department of Chemical Sciences Ariel University Ariel Israel

A

Amey Nimkar

Department of Chemistry Bar Ilan University Ramat Gan Israel

Z

Zhou Yu

Department of Chemical and Biomolecular Engineering

D

Daniel Sharon

Institute of Chemistry Hebrew University of Jerusalem Jerusalem Israel

N

Netanel Shpigel

Department of Chemical Sciences, Ariel University