双酚A
光催化
降级(电信)
异质结
化学工程
双酚
化学
光降解
载流子
电子转移
材料科学
催化作用
光化学
有机化学
光电子学
计算机科学
电信
工程类
环氧树脂
作者
Shengchao Zhao,Shuai Liu,Bangfu Ding,Liang Mao,Shuilin Zheng,Junying Zhang
标识
DOI:10.1016/j.cej.2023.147348
摘要
For the current design of heterojunction, only one new transfer channel of charge carriers was generated. In this paper, a novel chemical reaction between P25 and γ-Bi2O3 generated Bi4Ti3O12 to construct two new transfer channels in the preparation process of CaTiO3. The optimal sample CaTiO3/Bi4Ti3O12/γ-Bi2O3-12 could degrade 94 % of bisphenol A and 99 % of bisphenol AF, which was much higher than those of the pure phases and the two-phase junction samples. The photocatalytic efficiency of these two pollutants remained 94 % and 99 % in the five cycle tests to indicate that the above new channels were not destroyed after continuous utilization. The main active substances were hole, electron and superoxide radical O2–• in process of degradation. Different wastewater environments held a slight impact on photocatalytic efficiency to reveal a good applicability in real-world environments. After 90 min, the TOC and COD removal efficiencies of bisphenol A also attained 43 % and 44 % while those of bisphenol AF reached to 77 % and 83 %. The excellent photodegradation activity came from the formation of two new channels to accelerate the spatial separation of charge carriers. The colony numbers of Escherichia coli were 0.87 × 10-6 CFU/mL and 0.88 × 10-6 CFU/mL in the solution degraded by bisphenol A and bisphenol AF to show the non-toxicity of the final product. Thus two new transfer channels were obtained via P25 reacting with γ-Bi2O3 to enhance the catalyst activity, opening up a unique idea for heterojunction preparation.
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