Nature‐Inspired MXene Electrode with the Highly Interconnected Gradient Nanoconfined Architecture

M Mengjie Wang (Sino-French Institute for Earth System Science, College of Urban and Environmental Sciences, Peking University) Y Yang Hong (RIKEN Center for Emergent Matter Science, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan) W Wenbin He Q Qixiang Zhang (Department of Applied Chemistry, School of Chemistry and Materials Science) G Gengchen Yu (School of Integrated Circuits Industry‐Education‐Research Institute of Advanced Materials and Technology for Integrated Circuits Institutes of Physical Science and Information Technology Anhui University Hefei 230601 P. R. China) J Jia Liu C Chen Chen L Li Wen D Dan‐Dan Wu (Information Materials and Intelligent Sensing Laboratory of Anhui Province Industry‐Education‐Research Institute of Advanced Materials and Technology for Integrated Circuits Institutes of Physical Science and Information Technology Anhui University Hefei 230601 China) Y Yongfa Cheng (Department of Chemistry and the Materials Research Center, Northwestern University) C Chaofeng Zhang (Institutes of Physical Science and Information Technology, School of Materials Science and Engineering, Leibniz International Joint Research Centre of Materials Sciences of Anhui Province) Y Yanan Ma S Siliang Wang (The Center for Cancer Research, School of Integrative Medicine, Shanghai University of Traditional Chinese Medicine) Y Yang Yue

Abstract

Abstract Achieving efficient ion transport in thick electrodes remains a fundamental challenge in electrochemical systems with high energy density, primarily due to prolonged diffusion pathways and poorly integrated architectures. Leveraging the nanoconfinement effect, (sub)nanoscale channels can significantly accelerate ion transport kinetics to maximize electrochemical performance. Inspired by the hierarchical network structure of bamboo membrane, a gradient nanoconfined MXene electrode (GNC‐MX) is designed, where multiscale interlayer spacing is coupled with in‐plane mesopores that bridge adjacent nanoconfined channels, enabling synergistic vertical and horizontal ion migration. Finite element simulations and density functional theory calculations reveal the synergistic optimization mechanism of ion transport via the gradient nanoconfined channels and in‐plane mesopores. Compared to pristine MXene, GNC‐MX electrodes exhibit substantially enhanced ion transport kinetics and charge storage performance. To optimize the nanoconfined channels, an in situ deprotonation‐reprotonation strategy is introduced to strengthen electrostatic repulsion and weaken hydrogen bonding and van der Waals interactions of the MXene interlayer, enabling quasi‐permanent expansion of ion transport channels. Furthermore, a scalable group‐welding method is developed to fabricate 400 µm‐thick electrodes with an ultrahigh areal capacitance of 20.7 F cm −2 , surpassing current MXene‐based electrodes. This work provides a scalable and tunable biomimetic platform for advanced ion nanoconfinement in energy storage systems.

Article Details

Volume / Issue Vol. 37, Issue 45
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

M

Mengjie Wang

Sino-French Institute for Earth System Science, College of Urban and Environmental Sciences, Peking University

Y

Yang Hong

RIKEN Center for Emergent Matter Science, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan

W

Wenbin He

Q

Qixiang Zhang

Department of Applied Chemistry, School of Chemistry and Materials Science

G

Gengchen Yu

School of Integrated Circuits Industry‐Education‐Research Institute of Advanced Materials and Technology for Integrated Circuits Institutes of Physical Science and Information Technology Anhui University Hefei 230601 P. R. China

J

Jia Liu

C

Chen Chen

L

Li Wen

D

Dan‐Dan Wu

Information Materials and Intelligent Sensing Laboratory of Anhui Province Industry‐Education‐Research Institute of Advanced Materials and Technology for Integrated Circuits Institutes of Physical Science and Information Technology Anhui University Hefei 230601 China

Y

Yongfa Cheng

Department of Chemistry and the Materials Research Center, Northwestern University

C

Chaofeng Zhang

Institutes of Physical Science and Information Technology, School of Materials Science and Engineering, Leibniz International Joint Research Centre of Materials Sciences of Anhui Province

Y

Yanan Ma

S

Siliang Wang

The Center for Cancer Research, School of Integrative Medicine, Shanghai University of Traditional Chinese Medicine

Y

Yang Yue