Abstract
To overcome the inherent limitations of 2D MXenes in photocatalysis, namely severe nanosheet restacking and rapid charge recombination, this study reports a synergistic dual-modification strategy. By integrating microwave-assisted in situ growth of carbon nanotubes (CNTs) with the hydrothermal incorporation of multivalent cobalt (Co) species, a 3D hierarchical Co-Ti3C2/CNT composite was successfully fabricated. Structural characterization reveals that the in situ grown CNTs act as robust spatial spacers and conductive highways, effectively preventing Ti3C2 agglomeration while providing a continuous electron-transfer network. The introduction of Co significantly enriches the surface with redox-active sites and facilitates the formation of an interfacial Schottky junction. Under visible-light irradiation, the optimized Co10%-Ti3C2/CNT composite achieved a superior methylene blue degradation efficiency of 90.3% within 120 min. Mechanistic insights, supported by EPR and electrochemical analyses, confirm that the Schottky barrier at the semiconductor-metal interface acts as a potent electron trap, significantly suppressing e−/h+ recombination and accelerating surface-mediated radical generation (•OH, •O2−). This work provides a sophisticated template for designing high-performance, dimensionally stable MXene-based heterostructures for advanced environmental remediation.
| Original language | English |
|---|---|
| Article number | 1612 |
| Journal | Molecules |
| Volume | 31 |
| Issue number | 10 |
| DOIs | |
| State | Published - May 2026 |
Bibliographical note
Publisher Copyright:© 2026 by the authors.
Keywords
- MXene
- carbon nanotubes
- degradation
- methylene blue
- photocatalysis
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