首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Rational Design of Carbon-Doped Carbon Nitride/Bi12O17Cl2 Composites: A Promising Candidate Photocatalyst for Boosting Visible-Light-Driven Photocatalytic Degradation of Tetracycline
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Rational Design of Carbon-Doped Carbon Nitride/Bi12O17Cl2 Composites: A Promising Candidate Photocatalyst for Boosting Visible-Light-Driven Photocatalytic Degradation of Tetracycline

机译:碳掺杂碳氮化物/ Bi12O17Cl2复合材料的合理设计:一种有前途的候选光催化剂,用于提高旋转光环的可见光光催化降解

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摘要

Many recent advances based on 2D materials have opened new possibilities in photocatalysis. In this paper, a new 2D semiconductor composite consisting of carbon-doped carbon nitride (denoted as CCN) layers and Bi12O17Cl2 layers was designed via an in situ method. A supramolecular chemistry approach was employed to form CCN by using the hydrogen-bonded melamine-cyanuric acid and barbituric acid, and Bi12O17Cl2 layers were obtained by using a moderate solvothermal method. CCN/Bi12O17Cl2 composite had superior photocatalytic performance for degrading antibiotic tetracycline (TC) under visible-light irradiation. The degradation rate constant of 20%CCN/Bi12O17Cl2 is 0.0409 min(-1), which is approximately 2.9-, 1.5-, and 32.1-fold those of pristine Bi12O17Cl2, CCN, and BiOCl, respectively. Electrochemical measurements showed that CCN/Bi12O17Cl2 composite has high photogenerated charge carrier separation efficiency. According to the trapping and electron spin resonance results, superoxide radicals and holes were the main active radicals in the degradation of TC. The enhanced photocatalytic activity of CCN/Bi12O17Cl2 can be attributed to enhanced charge separation. It is expected that the CCN/Bi12O17Cl2 composite could be utilized as visible-light photocatalyst for other environmental applications.
机译:最近基于2D材料的最新进展在光催化中开辟了新的可能性。本文通过原位方法设计了一种由掺杂碳掺杂的氮化碳氮化物(表示为CCN)层和Bi12O17Cl2层组成的新的2D半导体复合物。通过使用氢键合的三聚氰胺 - 氰基酸和巴比妥酸来使用超分子化学方法来形成CCN,并且通过使用中度溶剂热法得到Bi12O17Cl2层。 CCN / Bi12O17Cl2复合材料具有卓越的光催化性能,可在可见光照射下降解抗生素四环素(TC)。 20%CCN / Bi12O17Cl2的降解率常数分别为0.0409分钟(-1),分别为原始Bi12O17Cl2,CCN和BioCl的约2.9-,1.5-和32.1倍。电化学测量结果表明,CCN / Bi12O17Cl2复合材料具有高光生电载量分离效率。根据捕获和电子自旋共振结果,超氧化物自由基和孔是TC降解中的主要主动性自由基。 CCN / Bi12O17Cl2的增强的光催化活性可归因于增强的电荷分离。预计CCN / Bi12O17Cl2复合材料可用作其他环境应用的可见光光催化剂。

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