Issue 46, 2023

Hollow sphere manganese–ceria solid solution enhances photocatalytic activity in tetracycline degradation

Abstract

As a typical representative of antibiotics, tetracycline is widely used in medicine and aquaculture due to its low cost and strong antibacterial ability. However, it is difficult for humans or animals to metabolize completely, resulting in the aggravation of water pollution in aquatic environments. Therefore, it is urgent to explore advanced photocatalysts for the degradation of antibiotics. In this work, we prepared a spherical manganese dioxide-ceria (MnCeOx) solid solution by a simple one-step hydrothermal method and evaluated its photocatalytic degradation activity towards tetracycline using a Xe lamp. The study of the structure and optical properties showed that doping of Mn cations into a ceria lattice can introduce defect energy levels to narrow the band gap, which can then increase the number of surface oxygen vacancies, so as to improve the adsorption of tetracycline and promote the separation and transfer of photogenerated electrons and holes. MnCeOx-10 with the highest oxygen defect showed the best photocatalytic performance (the promising degradation efficiency was 65% in 90 minutes), which was about 2.3 times and 1.3 times higher than those of the original CeO2 and MnOx/CeO2 catalysts, respectively. In addition, the capture experiment verified that ˙O2 and h+ should be the reasons for enhancing the degradation process. This study provides guidance and a practical basis for the development of an efficient rare-earth photocatalyst system.

Graphical abstract: Hollow sphere manganese–ceria solid solution enhances photocatalytic activity in tetracycline degradation

Supplementary files

Article information

Article type
Paper
Submitted
13 Sep 2023
Accepted
28 Oct 2023
First published
30 Oct 2023
This article is Open Access
Creative Commons BY-NC license

New J. Chem., 2023,47, 21264-21269

Hollow sphere manganese–ceria solid solution enhances photocatalytic activity in tetracycline degradation

H. Shi, Q. Shi, J. Li and G. Li, New J. Chem., 2023, 47, 21264 DOI: 10.1039/D3NJ04299E

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