Engineered 2D MXene-based materials for advanced supercapacitors and micro-supercapacitors
Review article, 2024

The class of two-dimensional transition metal carbides/nitrides/oxycarbides (known as MXenes) has shown great potential in energy storage applications due to their intrinsic layered structure, outstanding electrical conductivity, tunable surface chemistry, and unique physicochemical properties. This review summarizes the latest progresses of MXene-based materials for supercapacitors and micro-supercapacitors. First, state-of-the-art structural engineering strategies for the construction of novel MXene-based electrodes are highlighted, as the electrochemical performance of MXenes is influenced by their structure, such as interlayer spacing and surface functional group density. Furthermore, the charge storage mechanisms of MXene-based electrodes in different electrolytes are discussed to stimulate further design and development of tailored materials for high-performance devices. Moreover, different device fabrication technologies are summarized and the achievements of specific device geometries (e.g., fiber-shape, planar-type, and three-dimensional devices) containing MXene-based materials are critically reviewed. Finally, perspectives and outlook for the development of high-performance MXene-based electrodes in terms of material engineering, performance improvement and device innovation are provided, clearly indicating research directions for next-generation advanced energy storage devices.

Structural engineering

Supercapacitors

Electrode materials

Micro-supercapacitors

MXenes

Author

Mingming Gao

Huazhong University of Science and Technology

Faxing Wang

Lawrence Berkeley National Laboratory

Sheng Yang

Shanghai Jiao Tong University

Antonio Gaetano Ricciardulli

ISIS - Supramolecular Science and Engineering Institute

Feng Yu

Nanjing University of Information Science and Technology

Junke Li

Huazhong University of Science and Technology

Jinhua Sun

Chalmers, Industrial and Materials Science, Materials and manufacture

Renheng Wang

Shenzhen University

Ying Huang

Huazhong University of Science and Technology

Shenzhen University

Panpan Zhang

Huazhong University of Science and Technology

Xing Lu

Huazhong University of Science and Technology

Materials Today

1369-7021 (ISSN) 18734103 (eISSN)

Vol. 72 318-358

Subject Categories

Materials Chemistry

Areas of Advance

Materials Science

DOI

10.1016/j.mattod.2023.12.009

More information

Latest update

3/21/2024