4.7 Article

Efficient integration of plasmonic Ag/AgCl with perovskite-type LaFeO3: Enhanced visible-light photocatalytic activity for removal of harmful algae

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 409, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jhazmat.2020.125018

关键词

Photocatalysis; Visible light; Ag/AgCl; LaFeO3; Harmful algae

资金

  1. National Natural Science Foundation of China [51778146, 52000034]
  2. Outstanding Youth Fund of Fujian Province in China [2018J06013]
  3. Open Project Program of National Engineering Research Center for Environmental Photocatalysis [NERCEP-201901]
  4. Fujian Provincial Transportation Science and Technology Project [202042]

向作者/读者索取更多资源

The novel plasmonic Ag/AgCl@LaFeO3 (ALFO) photocatalyst showed enhanced photocatalytic activity in controlling harmful algal blooms (HABs) under visible light. ALFO-20% demonstrated higher light absorption capacity and lower electron-hole recombined rate compared to pure LaFeO3 and Ag/AgCl. Furthermore, ALFO-20% efficiently removed chlorophyll a from HABs, altered algae cell membrane permeability and morphology, disrupted photosynthesis and antioxidant systems, reducing secondary pollution and preventing HAB recurrence.
A novel plasmonic Ag/AgCl@LaFeO3 (ALFO) photocatalyst was successfully synthesized by a simple in-situ synthesis method with enhanced photocatalytic activity under visible light for harmful algal blooms (HABs) control. The structure, morphology, chemical states, optical and electrochemical properties of the photocatalyst were systematically investigated using a series of characterization methods. Compared with pure LaFeO3 and Ag/AgCl, ALFO-20% owned a higher light absorption capacity and lower electron-hole recombined rate. Therefore, ALFO-20% had higher photocatalytic activity with a near 100% removal rate of chlorophyll a within 150 min, whose kinetic constant was 15.36 and 9.61 times faster than those of LaFeO3 and Ag/AgCl. In addition, the changes of zeta potential, cell membrane permeability, cell morphology, organic matter, total soluble protein, photosynthetic system and antioxidant enzyme system in Microcystis aeruginosa (M. aeruginosa) were studied to explore the mechanism of M. aeruginosa photocatalytic inactivation. The results showed that ALFO-20% could change the permeability and morphology of the algae cell membrane, as well as destroy the photosynthesis system and antioxidant system of M. aeruginosa. What's more, ALFO could further degrade the organic matters flowed out after algae rupture and die, reducing the secondary pollution and avoiding the recurrence of HABs. Finally, the species of reactive oxygen species (ROS) (mainly center dot O-2(-) and center dot OH) produced by ALFO were determined through quenching experiments, and a possible photocatalytic mechanism was proposed. Overall, ALFO can efficiently remove the harmful algae under the visible light, providing a promising method for controlling HABs.

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