Issue 8, 2025

MXene synthesis in a semi-continuous 3D-printed PVDF flow reactor

Abstract

Two-dimensional transition metal carbides, nitrides and carbonitrides known as MXenes represent a promising class of functional materials for electrochemical energy storage, catalysis, electromagnetic shielding, and optoelectronics. Typical synthesis methods require highly concentrated acids and HF-containing or HF-forming chemicals, under batch conditions. Environmentally friendly, safe, efficient, and scalable synthesis methods for MXenes have been identified as the number one research challenge for MXene research over the next decade. Here we use flow chemistry to present a semi-continuous synthesis of Ti3C2Tz in a custom 3D-printed reactor. The synthesis is safer and is the first step towards scalable methods, yielding fully etched MXenes with better removal of Al from the starting MAX phase compared to the equivalent batch procedure.

Graphical abstract: MXene synthesis in a semi-continuous 3D-printed PVDF flow reactor

Supplementary files

Article information

Article type
Communication
Submitted
28 Nov 2024
Accepted
13 Mar 2025
First published
19 Mar 2025
This article is Open Access
Creative Commons BY license

Nanoscale Adv., 2025,7, 2166-2170

MXene synthesis in a semi-continuous 3D-printed PVDF flow reactor

M. J. Clark, A. E. Oakley, N. Zhelev, M. Carravetta, T. Byrne, A. M. Nightingale and N. Bimbo, Nanoscale Adv., 2025, 7, 2166 DOI: 10.1039/D4NA00991F

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