光催化
过氧化氢
降级(电信)
激进的
光化学
氧化还原
化学
光降解
化学工程
污染物
材料科学
矿化(土壤科学)
催化作用
环境化学
作者
Chuanlei Li,Xiaonan Tan,Jiahai Ma
标识
DOI:10.1016/j.jphotochem.2021.113477
摘要
• The coating novel SCNO@CdS is fabricated by one pot method. • Innergenerated-H 2 O 2 accelerates degradation reaction of Photo-Fenton. • Core-shell structure increases the interface area and the active sites. Photocatalytic oxidation technology as the environment-friendly treatment method can oxidize organic pollutants into pollution-free small-molecule inorganic substances by producing radicals, holes and hydrogen peroxide. To effectively improve photocatalytic activity, Photo-Fenton reaction of innergenerated-H 2 O 2 is purposed, and the morphology of semiconductor photocatalysts must be precisely controlled during the formation process. According to the experimental characterization and photocatalytic analysis, it is evident that the resultant large specific surface area and good optical capability play the synergetic contributions for their superior pollutant degradation during photocatalysis and Photo-Fenton reaction. Fortuitously, the combination of g-C 3 N 4 nanosheets with CdS (SCNO@CdS) provides plentiful bi-functional redox sites and displays an excellent synergistic catalytic effect. Furthermore, the superior prosperity with multi-functions to degrade mixed dyes including Photo-Fenton and Photocatalysis reaction, and the maximum production rate of H 2 O 2 is 7971.0 μmol·h −1 ·g −1 by 40 wt% SCNO@CdS under irradiation. Without adding hydrogen peroxide will broaden the foresight of Photo-Fenton in the future.
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