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Carbon nitride coupled with Ti3C2-Mxene derived amorphous Ti-peroxo heterojunction for photocatalytic degradation of rhodamine B and tetracycline

罗丹明B 光催化 材料科学 降级(电信) 石墨氮化碳 氮化碳 异质结 氮化物 无定形固体 无定形碳 化学工程 光电子学 化学 纳米技术 催化作用 计算机科学 图层(电子) 有机化学 工程类 电信
作者
Wenwen Tu,Yucheng Liu,Mingyan Chen,Ying Zhou,Zhengfeng Xie,Lili Ma,Lingli Li,Bing Yang
出处
期刊:Colloids and Surfaces A: Physicochemical and Engineering Aspects [Elsevier]
卷期号:640: 128448-128448 被引量:14
标识
DOI:10.1016/j.colsurfa.2022.128448
摘要

Exploring the solar-driven photocatalyst for antibiotic and dye degradation has been confronted with a great challenge. In this study, a novel and original photocatalyst derived from the g-C 3 N 4 /amorphous Ti-peroxo complexes (CATC) heterojunction was successfully synthesized towards Rhodamine B (RhB) and tetracycline (TC) degradation under visible light irradiation (λ>420 nm). Based on the special photocatalytic activity, Ti 3 C 2 -Mxene acted as the starting precursor of amorphous Ti-peroxo complexes via one-step H 2 O 2 oxidation route. Multiple characterization techniques were applied to explore the crystal structure, element composition, and photoelectrochemical property of photocatalyst. As expected, the modified photocatalyst possessed a favorable photocatalytic performance towards the preferable reaction rate for RhB (0.0483 min −1 ) and TC (0.0208 min −1 ) degradations, which were 16.65 times and 69.3 times higher than that of pure g-C 3 N 4 (CN) material, profiting from the generated direct Z-scheme heterojunction with favorable redox capacity. Here, h + ,∙O 2 - and ∙OH were verified as typical active radicals for RhB and TC degradation through free radical quenching experiments and electron spin resonance characterization. Degradation intermediate products were also confirmed by high performance liquid chromatography–mass spectrometer (HPLC-MS). The effects of initial pH and ionic strength on RhB and TC photocatalytic degradation performances were discussed. In addition, a preferable reusability and stability performance ensured the modification photocatalyst had a great application potential in wastewater treatment. This study provided a unique avenue through one-step method for the construction of g-C 3 N 4 and Mxene based photocatalyst towards the degradation of antibiotics and dyes from wastewater. • Ti 3 C 2 -Mxene acts as the precursor of amorphous Ti-peroxo complexes via one-step H 2 O 2 oxidation route; • The heterojunction was synthesized via g-C 3 N 4 coupled with amorphous Ti-peroxo complexes; • Superior Rhodamine B (RhB) and tetracycline (TC) photocatalytic degradation performances for heterojunction were achieved;
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