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Pumice-loaded rGO@MnO2 nanomesh photocatalyst with visible light response for rapid degradation of ciprofloxacin.

Authors :
Liu, Hongchang
Zou, Xue
Chen, Qiumeng
Fan, Wenjuan
Gong, Zhengjun
Source :
Separation & Purification Technology. Sep2022, Vol. 297, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

[Display omitted] • A pumice-based solid visible light responsive photocatalyst PS@rGO@MnO 2 was successfully synthesized. • PS@rGO@MnO 2 has an effective removal effect on ciprofloxacin in natural surface water under sunlight. • The degradation mechanism and transformation pathway of ciprofloxacin, as well as the ecotoxicity of intermediate products were proposed. • PS@rGO@MnO 2 material has good stability and convenient recycling. The agglomeration and recycling of nano-photocatalytic materials are still a big problem restricting the practical application of photocatalytic technology. Natural porous pumice with adsorption capacity provides an innovative approach to this challenge. Herein, the pumice supported reduced graphene oxide and MnO 2 (PS@rGO@MnO 2) was designed as a visible-light-driven solid photocatalyst. The PS@rGO@MnO 2 possessed good photocatalytic performance, and the removal rate of ciprofloxacin (CFX) reached 80.00% with simulated solar irradiation for 6 h, and the degradation rate constant was 4.2 times that of blank pumice. The degradation rates of CFX in secondary effluent, lake water, and river water can reach 62.15%, 68.33%, and 67.63%, respectively. Hole (h+) and superoxide radical (O 2 −) are the main reactive oxygen species. The material test results revealed that the enhanced photocatalytic performance of PS@rGO@MnO 2 was due to the improvement of light utilization rate, the reduction of electron-hole pair recombination rate, and the improvement of charge separation efficiency and transfer efficiency. ECOSAR model predictions indicate that CFX can effectively reduce toxicity in photocatalytic reactions. The removal performance of actual natural water verified that the material was of great practical application potential. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13835866
Volume :
297
Database :
Academic Search Index
Journal :
Separation & Purification Technology
Publication Type :
Academic Journal
Accession number :
157711623
Full Text :
https://doi.org/10.1016/j.seppur.2022.121502