Porosity Engineering of MXene Architectures: Toward High‐Performance Aqueous Electrochemical Energy Storage

S Shude Liu (Engineering Research Center of Technical Textiles Ministry of Education, College of Textiles Donghua University Shanghai 201620 P.R. China) J Jieming Chen (Engineering Research Center of Technical Textile Ministry of Education College of Textiles Donghua University Shanghai China) X Xue Peng (Department of Biomolecular Engineering) H Huilin Zhang L Ling Kang (School of Mechanical Engineering Yonsei University Seoul South Korea) M Ming Ma (State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences, Peking University, 38 Xueyuan Road, Haidian District, Beijing 100191, China) Z Zhaoling Li Y Yusuke Yamauchi B Bin Ding (National Key Laboratory of Strength and Structural Integrity, Institute of Solid Mechanics, School of Aeronautic Science and Engineering, Beihang University)

Abstract

ABSTRACT Aqueous electrochemical energy storage systems (EESs) have garnered growing attention due to their inherent safety, environmental friendliness, and rapid charge–discharge capabilities, positioning them as promising candidates for next‐generation sustainable energy technologies. Among various electrode materials, MXenes are particularly appealing owing to their excellent electrical conductivity, layered structure, and tunable surface functionalities. However, their practical application is still hindered by issues such as nanosheet restacking, limited ion accessibility, and structural instability. Porosity engineering has emerged as a key strategy to mitigate these issues by expanding ion diffusion pathways, increasing the exposure of electroactive sites, and enhancing structural robustness. This review first outlines the structural features, porosity characteristics, and charge storage mechanisms of MXenes in aqueous EESs. It then provides a systematic overview of porosity engineering strategies, including chemically engineered porosification, functionalization‐induced porosification, energy field‐assisted porosification, template‐assisted porosification, integration with porous functional components, self‐assembly/self‐supporting‐driven porosification, and advanced manufacturing techniques. Furthermore, the impact of porosity modulation on the redox electrochemistry of MXenes is critically discussed to elucidate structure–property relationships across diverse aqueous EESs (including alkali‐metal‐ion batteries, multivalent‐metal‐ion batteries, and supercapacitors). Finally, existing contradictions, challenges, and future directions for designing porous MXene architectures are presented to accelerate their practical development in aqueous EESs.

Article Details

Volume / Issue Vol. 38, Issue 30
Published May 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

S

Shude Liu

Engineering Research Center of Technical Textiles Ministry of Education, College of Textiles Donghua University Shanghai 201620 P.R. China

J

Jieming Chen

Engineering Research Center of Technical Textile Ministry of Education College of Textiles Donghua University Shanghai China

X

Xue Peng

Department of Biomolecular Engineering

H

Huilin Zhang

L

Ling Kang

School of Mechanical Engineering Yonsei University Seoul South Korea

M

Ming Ma

State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences, Peking University, 38 Xueyuan Road, Haidian District, Beijing 100191, China

Z

Zhaoling Li

Y

Yusuke Yamauchi

B

Bin Ding

National Key Laboratory of Strength and Structural Integrity, Institute of Solid Mechanics, School of Aeronautic Science and Engineering, Beihang University