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Nonradicals-dominated peroxymonosulfate activation of g-C3N4/CeO2 floating beads for enhanced inactivation of M. aeruginosa: Performance studies and mechanistic insights
被引:1
作者:
Wang, Dandan
[1
]
Li, Jing
[1
]
Zhang, Rong
[1
]
Xin, Beiyu
[1
]
Huang, Xueru
[1
]
Wang, Yang
[1
]
Guo, Jifeng
[1
]
机构:
[1] Changan Univ, Key Lab Subsurface Hydrol & Ecol Effects Arid Reg, Sch Water & Environm,Minist Water Resources, Key Lab Ecohydrol & Water Secur Arid & Semiarid Re, Xian 710054, Peoples R China
关键词:
Algae inactivation;
Photocatalysis;
Peroxymonosulfate;
Density functional theory;
CeO2;
GRAPHITIC CARBON NITRIDE;
PHOTOCATALYTIC INACTIVATION;
MICROCYSTIN-LR;
DEGRADATION;
NANOCOMPOSITE;
EFFICIENCY;
SUBSTRATE;
OXIDATION;
TOXICITY;
KINETICS;
D O I:
10.1016/j.cej.2025.160703
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
Microcystis aeruginosa (M. aeruginosa) is a typical harmful algal associated with eutrophication, making the study of its inactivation critical for water restoration. In this research, g-C3N4/CeO2 composites with S-scheme heterojunctions were synthesized and incorporated into sodium alginate (SA) to successfully prepare photocatalytic gel beads with floating capabilities. A photocatalytic persulfate (g-C3N4/CeO2/SA/Vis/PMS) system was developed to systematically investigate the algal inactivation efficacy of floating catalysts. The g-C3N4/CeO2 S-scheme heterojunctions significantly enhanced algal inactivation efficiency, achieving up to 96.65 % inactivation within 80 min. The alterations in algal cell properties during the inactivation process were examined. A decrease in the content of algal bile proteins indicated a disruption of the photosynthetic system within the algal cells, while an increase in the concentrations of K+, Ca2+, and Mg2+ suggested further disruption of algal cell membranes and walls. Additionally, three-dimensional fluorescence spectroscopy (EEM) results indicated that the extracellular organic matter produced during the rupture of algal cells was degraded into humic acid-like substances. The energy bands and electronic structure of g-C3N4/CeO2 were calculated using density functional theory (DFT) to analyze the electron transfer mechanism involved in this process, which is consistent with the S-scheme electron transfer pathway. The effective inactivation of M. aeruginosa was successfully achieved through the combined action of the non-radical 1O2,& sdot;O2-, and h+ generated during the photogenerated carrier transfer process. This approach offers a promising strategy for the management of algal blooms in eutrophic waters.
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页数:14
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