Issue 46, 2023

Activation of 2D titanate nanosheet photocatalysts by nitrogen doping and solution plasma processing

Abstract

Novel two-dimensional (2D) oxides are of great interest for photocatalysis because of their superlative physical features, namely, large surface areas, short charge diffusion pathways, high crystallinity and easy surface modification. However, most 2D oxides suffer from weak visible light absorption and severe photogenerated carrier recombination. Nitrogen doping can successfully narrow the bandgap of 2D oxides but can hardly improve the charge separation. In this work, we pre-dope nitrogen into 2D titanate nanosheets (HTiO), followed by surface processing with solution plasma. By dual modification of nitrogen doping and solution plasma processing (SPP), the modified 2D titanate nanosheets (N-HTiO-SPP) display broad absorption extending to the visible light region and the healing of oxygen vacancies brought about by nitrogen doping. Compared with HTiO and nitrogen doped titanate (N-HTiO), a higher removal rate and mineralization rate towards the photocatalytic degradation of acetaldehyde were achieved over N-HTiO-SPP under solar light. This work provides a powerful way to activate 2D wide bandgap semiconductors for enhanced photocatalytic activity.

Graphical abstract: Activation of 2D titanate nanosheet photocatalysts by nitrogen doping and solution plasma processing

Supplementary files

Article information

Article type
Paper
Submitted
07 Aug 2023
Accepted
28 Oct 2023
First published
31 Oct 2023

Dalton Trans., 2023,52, 17193-17200

Activation of 2D titanate nanosheet photocatalysts by nitrogen doping and solution plasma processing

Y. Xing, Y. Zhang, C. Wang, R. Wang, D. Li, S. Liang and X. Zhang, Dalton Trans., 2023, 52, 17193 DOI: 10.1039/D3DT02550K

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