Ultrafast photodegradation of nitenpyram by Ag/Ag3PO4/Zn–Al LDH composites activated by persulfate system: Removal efficiency, degradation pathway and reaction mechanism

In this study, an investigation is conducted into the degradation of nitenpyram (NTP) using highly efficient APMMO/PDS/Vis system. As photocatalysts, silver phosphate (AP) and calcined Zn–Al layered double hydroxides (MMO) exhibit high efficiency in achieving charge separation. Besides, the injectio...

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Veröffentlicht in:Chemosphere (Oxford) 2022-04, Vol.292, p.133431-133431, Article 133431
Hauptverfasser: Zheng, Jiangfu, Li, Wenbo, Tang, Rongdi, Xiong, Sheng, Gong, Daoxin, Deng, Yaocheng, Zhou, Zhanpeng, Li, Ling, Su, Long, Yang, Lihua
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Sprache:eng
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Zusammenfassung:In this study, an investigation is conducted into the degradation of nitenpyram (NTP) using highly efficient APMMO/PDS/Vis system. As photocatalysts, silver phosphate (AP) and calcined Zn–Al layered double hydroxides (MMO) exhibit high efficiency in achieving charge separation. Besides, the injection of electrons into peroxydisulfate (PDS) from the APMMO can contribute to obtaining the species in the active state with higher efficiency. Based on the APMMO/PDS/Vis system, 50 mg/L of nitenpyram (NTP, 50 mL) can be completely removed in 60 min using 0.8 g/L photocatalyst and 0.2 g/L PDS under the optimum condition and visible light (780 nm > λ > 420 nm). Meanwhile, as demonstrated under visible light within 30 min, an ultrahigh degradation efficiency can be achieved by NTP based on APMMO1/PDS/Vis system. Besides, the electron paramagnetic resonance (EPR) technique and radical quenching experiments suggested 1O2, h+, SO4−•, •O2−, and •OH are all contributory to the removal of pollutants. Given the outcomes achieved by LC/MS system and mass spectrometry, the primary degradation intermediates of NTP end up being converted into photodegradation products (such as 2-Chloropyridine, 6-Chloropurine Riboside and dl-Leucine). Additionally, there are three potential photodegradation pathways to NTP degradation have been deployed. Moreover, the NTP light degradation occurring in APMMO1/PDS/Vis system is competent under the three types of real water sample. Accordingly, the high-efficiency APMMO1/PDS/Vis system is fit for use in water pollution control for agricultural productions. [Display omitted] •Ultra-fast photodegradation of NTP by Ag/Ag3PO4/Zn–Al LDH composites.•Effects of key parameters on the NTP degrade were studied.•1O2 is dominant oxidative species instead of SO4−.•, •O2−, and •OH.•The degradation pathway and reaction mechanism of NTP were proposed.
ISSN:0045-6535
1879-1298
DOI:10.1016/j.chemosphere.2021.133431