Low‐Dimensional MOF Nanoarchitectonics: Progress in MOF‐2D Material Hybrid Architectures for Energy Conversion and Storage

P Prashant Dubey (Department of Materials Process Engineering Graduate School of Engineering Nagoya University Nagoya Japan) N Norman C.‐R. Chen (Department of Chemical Engineering National Taiwan University No. 1, Sec. 4, Roosevelt Road Taipei 106319 Taiwan) X Xiangyang Liu (Institute of Metal Research, Shenyang National Laboratory for Materials Science, Chinese Academy of Sciences) Y Yongqi Yin (Department of Materials Process Engineering Graduate School of Engineering Nagoya University Nagoya Japan) K Keisuke Shirasaki (Department of Materials Process Engineering Graduate School of Engineering Nagoya University Nagoya Japan) K Kevin C.‐W. Wu (Department of Chemical Engineering National Taiwan University No. 1, Sec. 4, Roosevelt Road Taipei 106319 Taiwan) Y Yingji Zhao (Department of Materials Process Engineering, Graduate School of Engineering, Nagoya University, Furu-cho, Chikusa-ku, Nagoya 464-8603, Japan) Y Yusuke Yamauchi

Abstract

ABSTRACT The integration of metal‐organic frameworks (MOFs) and two‐dimensional (2D) materials is a powerful and rapidly advancing strategy for creating multifunctional hybrid materials. Unlocking their full potential requires overcoming the intrinsic limitations of each component, specifically the poor electrical conductivity of MOFs and the restacking of 2D nanosheets. This review provides a systematic overview of the pivotal role of dimensional interface engineering in addressing this challenge. A systematic analysis of synthesis methodologies is presented, including direct growth, encapsulation, layer‐by‐layer assembly, and MOF‐derived transformations, correlating architectural control with the fundamental structure–property relationships that govern mass transport, electronic coupling, and defect chemistry. The remarkable impact of these engineered hybrids is then highlighted across key applications in high‐performance electrocatalysis for crucial energy conversion reactions and in advanced energy storage systems such as batteries and supercapacitors. A central theme is that the deliberate manipulation of the interface is the critical determinant for unlocking synergistic enhancements in charge and mass transport, structural stability, and redox activity. Finally, this review concludes by critically assessing persistent challenges in scalability, stability, and atomic‐level precision, while outlining the future opportunities poised to propel MOF‐2D hybrids from laboratory innovations to transformative technologies.

Article Details

Volume / Issue Vol. 38, Issue 19
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

P

Prashant Dubey

Department of Materials Process Engineering Graduate School of Engineering Nagoya University Nagoya Japan

N

Norman C.‐R. Chen

Department of Chemical Engineering National Taiwan University No. 1, Sec. 4, Roosevelt Road Taipei 106319 Taiwan

X

Xiangyang Liu

Institute of Metal Research, Shenyang National Laboratory for Materials Science, Chinese Academy of Sciences

Y

Yongqi Yin

Department of Materials Process Engineering Graduate School of Engineering Nagoya University Nagoya Japan

K

Keisuke Shirasaki

Department of Materials Process Engineering Graduate School of Engineering Nagoya University Nagoya Japan

K

Kevin C.‐W. Wu

Department of Chemical Engineering National Taiwan University No. 1, Sec. 4, Roosevelt Road Taipei 106319 Taiwan

Y

Yingji Zhao

Department of Materials Process Engineering, Graduate School of Engineering, Nagoya University, Furu-cho, Chikusa-ku, Nagoya 464-8603, Japan

Y

Yusuke Yamauchi