Boosting Magnesium Storage Performance of π‐Conjugated Polyimide Cathodes Through Synergistic Molecular and Electrolyte Engineering

X Xiaoqian He (The Institute for Advanced Studies (IAS)) X Xinyu Sun (Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering) R Ruiqi Cheng L Lin Hong (School of Mechanical Engineering National Engineering Laboratory of Automobile Electronics and Control Technology Shanghai Jiao Tong University 800 Dongchuan Road Shanghai 200240 P.R. China) X Xiaodong Lin (Institute of Condensed Matter and Nanosciences) J Jie Li P Petru Apostol (Institute of Condensed Matter and Nanosciences) X Xinlong Xie L Longfei Shao (National Engineering Research Center of Light Alloys Net Forming and State Key Laboratory of Metal Matrix Composites Center of Hydrogen Science School of Materials Science and Engineering Shanghai Jiao Tong University Shanghai 200240 P.R. China) V Viliam Frano (Institute of Condensed Matter and Nanosciences) A Alexandru Vlad (Institute of Condensed Matter and Nanosciences) J Jianxin Zou

Abstract

Abstract Magnesium metal batteries (MMBs) offer the promise of low cost, intrinsic safety, and high volumetric energy density, but their development is hindered by the scarcity of cathodes capable of reversible Mg 2+ storage and by cathode–electrolyte incompatibilities. Here, we demonstrate that coupling molecularly engineered polyimide (PI) cathodes with tailored electrolyte speciation enables fast and durable Mg storage. Two PIs, poly(naphthalene tetracarboxylic dianhydride‐urea imide) (NUPI) and poly(perylene tetracarboxylic dianhydride‐urea imide) (PUPI), with analogous backbones but distinct degrees of π‐conjugation were systematically evaluated in both chloride‐containing and chloride‐free electrolytes. Systematic studies indicate that chloride‐free electrolytes, characterized by weakly coordinating anions, enable reversible enolization (C═O ⇌ C─O − /[C─O − ] 2 Mg 2+ ) while suppressing side reactions. Additionally, NUPI, featuring stronger π─π stacking and more ordered layered structures, facilitates Mg 2+ transport and interfacial charge transfer. When combined with a graphene oxide‐modified separator, the NUPI cathode delivers 175 mAh g −1 at 50 mA g −1 and exhibits ultralow capacity fading (≈0.05% per cycle over 1000 cycles at 500 mA g −1 ). Operando/ex situ spectroscopy analyses and theoretical calculations further confirm the enolization‐dominated redox mechanism. This work establishes a molecular‐electrolyte co‐design paradigm for high‐rate, durable MMBs based on carbonyl polymer chemistry .

Article Details

Volume / Issue Vol. 65, Issue 4
Published January 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

X

Xiaoqian He

The Institute for Advanced Studies (IAS)

X

Xinyu Sun

Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering

R

Ruiqi Cheng

L

Lin Hong

School of Mechanical Engineering National Engineering Laboratory of Automobile Electronics and Control Technology Shanghai Jiao Tong University 800 Dongchuan Road Shanghai 200240 P.R. China

X

Xiaodong Lin

Institute of Condensed Matter and Nanosciences

J

Jie Li

P

Petru Apostol

Institute of Condensed Matter and Nanosciences

X

Xinlong Xie

L

Longfei Shao

National Engineering Research Center of Light Alloys Net Forming and State Key Laboratory of Metal Matrix Composites Center of Hydrogen Science School of Materials Science and Engineering Shanghai Jiao Tong University Shanghai 200240 P.R. China

V

Viliam Frano

Institute of Condensed Matter and Nanosciences

A

Alexandru Vlad

Institute of Condensed Matter and Nanosciences

J

Jianxin Zou