Issue 51, 2025, Issue in Progress

Engineering MXene/metal composites from MAX phase/metal–Al precursors for high-performance energy conversion and storage

Abstract

Two-dimensional (2D) transition metal carbides, MXenes, have garnered significant interest for their potential applications in various energy storage and conversion systems. This work presents a novel approach to synthesizing MXene/metal composites via direct etching of MAX phase/metal–Al alloy precursor materials. By combining the Ti3AlC2 MAX phase with metal alloys and optimizing the processing conditions, we demonstrate a scalable method for producing MXene/metal composites with a 3D porous architecture and good mechanical integrity. Electrochemical tests have revealed that these composites exhibit high electrochemical activity toward the hydrogen evolution reaction (HER) and possess substantial areal capacitance, making them promising candidates for energy storage applications. Additionally, this synthesis strategy is adaptable to other MAX phases and metal–Al alloys, enabling the fabrication of customizable MXene/metal composites with tailored nanostructures for a broad range of electrochemical applications.

Graphical abstract: Engineering MXene/metal composites from MAX phase/metal–Al precursors for high-performance energy conversion and storage

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Article information

Article type
Paper
Submitted
19 Sep 2025
Accepted
04 Nov 2025
First published
10 Nov 2025
This article is Open Access
Creative Commons BY license

RSC Adv., 2025,15, 43505-43522

Engineering MXene/metal composites from MAX phase/metal–Al precursors for high-performance energy conversion and storage

S. A. Sergiienko, A. V. Kovalevsky, J. Luxa, K. Mosina, B. Wu, G. Constantinescu, J. Azadmanjiri, N. D. Shcherban, O. Diyuk and Z. Sofer, RSC Adv., 2025, 15, 43505 DOI: 10.1039/D5RA07113E

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