Redefining Separator Design and Water Activity for High‐Energy Zinc Batteries Using Covalent Organic Framework

K Kun Zhang H Hongtian Liu (Department of Chemistry National University of Singapore Singapore Singapore) Y Yiwei Zhao (Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore) Y Yijia Yuan (Department of Chemistry) S Shibo Xi Y Yaohua Zhao L Li Ma C Changan Lu (Department of Chemistry National University of Singapore Singapore Singapore) S Shuanglin Wu (Department of Chemistry National University of Singapore Singapore Singapore) X Xiaomei Huo J Jia Liu K Keyu Xie (State Key Laboratory of Solidification Processing, Center for Nano Energy Materials, School of Materials Science and Engineering) K Kian Ping Loh (Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore)

Abstract

ABSTRACT Despite zinc metal batteries offering attractions such as natural abundance, safety, and sustainability, their widespread adoption is hindered by a critical, underexplored limitation: intrinsically low device‐level energy density. While previous research has prioritized stabilizing zinc anodes to suppress dendrites, practical energy densities remain constrained by excessive inactive components (separators, electrolytes) that dominate device mass and volume. Conventional strategies, such as cell upscaling, exacerbate this issue by necessitating surplus electrolyte, leading to inflated electrolyte to capacity ratios (> 10 g Ah −1 ) and poor specific/volumetric energy metrics (e.g., ∼5 Wh kg −1 ). Current reporting practices, focusing on Ah or idealized active‐material metrics, further obscure true performance, masking the urgent need for holistic design innovations. Crucially, lean‐electrolyte operation, essential for high energy density, introduces unaddressed challenges like interfacial water depletion and activity mismanagement. This work bridges this gap by systematically unraveling failure mechanisms under lean conditions and pioneering a functional separator that optimizes water management and ion transport. By redefining hydrogen‐bonding networks to mitigate water consumption and enable rapid infiltration, the developed COF@PAN separator achieves unprecedented energy densities (54.0 Wh kg −1 , 185.3 Wh L −1 ) and cycle stability (over 800 cycles) in practical pouch cells. These insights and designs advance Zn metal batteries beyond lab‐scale promises, positioning them as viable contenders for energy‐dense, real‐world applications.

Article Details

Volume / Issue Vol. 38, Issue 17
Published March 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

K

Kun Zhang

H

Hongtian Liu

Department of Chemistry National University of Singapore Singapore Singapore

Y

Yiwei Zhao

Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore

Y

Yijia Yuan

Department of Chemistry

S

Shibo Xi

Y

Yaohua Zhao

L

Li Ma

C

Changan Lu

Department of Chemistry National University of Singapore Singapore Singapore

S

Shuanglin Wu

Department of Chemistry National University of Singapore Singapore Singapore

X

Xiaomei Huo

J

Jia Liu

K

Keyu Xie

State Key Laboratory of Solidification Processing, Center for Nano Energy Materials, School of Materials Science and Engineering

K

Kian Ping Loh

Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore