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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Controllable synthesis of Bi4O5Br2 ultrathin nanosheets for photocatalytic removal of ciprofloxacin and mechanism insight
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Controllable synthesis of Bi4O5Br2 ultrathin nanosheets for photocatalytic removal of ciprofloxacin and mechanism insight

机译:Bi4O5Br2超薄纳米片的可控合成用于光催化环丙沙星的去除及其机理研究

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摘要

A novel Bi4O5Br2 photocatalyst was prepared via a reactable ionic liquids-assisted solvothermal method accompanied with facile pH control. A Bi4O5Br2 ultrathin nanosheets material with 8 nm thickness could be obtained. The photocatalytic activity of the Bi4O5Br2 ultrathin nanosheets was evaluated with respect to the photo-degradation of colourless antibiotic agent ciprofloxacin (CIP) under visible light irradiation. The results revealed that the Bi-rich Bi4O5Br2 ultrathin nanosheets exhibited higher photocatalytic activity than BiOBr ultrathin nanosheets for the photo-degradation of CIP. The O-2(center dot-) anion was determined to be the main active species for the photo-degradation process by ESR. After multiple characterizations, the variable energy band structure was confirmed to be responsible for the enhanced photocatalytic activity. The more negative conduction band (CB) value of Bi4O5Br2 facilitated the formation of more active species, O-2(center dot-). The upshifting of the CB and the wider valence band favor the higher separation efficiency of electron-hole pairs. It was hoped that this architecture of ultrathin 2D inorganic materials with a suitable band gap can be extended to other systems for high-performance photocatalysis applications.
机译:通过可反应的离子液体辅助溶剂热法和简便的pH控制,制备了新型的Bi4O5Br2光催化剂。可以获得厚度为8 nm的Bi4O5Br2超薄纳米片材料。相对于无色抗生素环丙沙星(CIP)在可见光照射下的光降解,评估了Bi4O5Br2超薄纳米片的光催化活性。结果表明,富含Bi的Bi4O5Br2超薄纳米片对CIP的光降解表现出比BiOBr超薄纳米片更高的光催化活性。通过ESR将O-2(中心点)阴离子确定为光降解过程中的主要活性物质。经过多次表征,证实了可变能带结构是增强光催化活性的原因。 Bi4O5Br2的负导电带(CB)值越高,有助于形成更多活性物种O-2(中心点)。 CB的上移和价带更宽有利于电子-空穴对的更高分离效率。希望具有合适带隙的超薄2D无机材料的这种体系结构可以扩展到用于高性能光催化应用的其他系统。

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