Facile synthesis of Ag/AgCl/PAF-54 heterojunction photocatalysts for TC degradation

Yonghui Lin, Letian Gan, Xiaojun Zhao, Guang Che, Shicheng Wang, Qinhe Pan
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Abstract

Photocatalysis plays an increasingly important role in the field of water treatment. Among the catalysts, Ag nanoparticles (NPs), a type of noble metal NP, show extraordinary potential for photocatalysis. Nevertheless, the aggregation caused by high surface energy limits their applications. The simple synthesis of Ag NPs with uniform size remains a challenge. In this work, a nitrogen-rich porous organic polymer (POP) with reduction ability, porous aromatic framework (PAF)-54, was chosen as the carrier for the in-situ synthesis of Ag NPs. By virtue of the reducing framework of PAF-54 and the formation of the AgCl/PAF-54 heterojunction, the in-situ reduction of Ag(I) was realized, and thus Ag NPs with the particle size of 20-25 nm were uniformly distributed on PAF-54, which exhibit a strong localized surface plasmon resonance (LSPR) effect. Furthermore, the Ag/AgCl/PAF-54 heterojunction effectively suppresses the recombination of photogenerated electrons and holes, leading to the enhanced photocatalytic ability of the composite material. Even with a small catalyst dosage, rapid tetracycline (TC) degradation can be achieved, and the degradation rate of TC reached 94.8% in 30 min. This study offers a facilitated approach for fabricating Ag-based POP composites with superior photocatalytic properties.
轻松合成用于 TC 降解的 Ag/AgCl/PAF-54 异质结光催化剂
光催化在水处理领域发挥着越来越重要的作用。在这些催化剂中,贵金属纳米颗粒(NPs)在光催化方面显示出非凡的潜力。然而,高表面能导致的聚集限制了它们的应用。如何简单地合成具有均匀尺寸的银纳米粒子仍然是一项挑战。本研究选择了一种具有还原能力的富氮多孔有机聚合物(POP)--多孔芳香框架(PAF)-54 作为原位合成 Ag NPs 的载体。借助 PAF-54 的还原框架和 AgCl/PAF-54 异质结的形成,实现了 Ag(I)的原位还原,从而使粒径为 20-25 nm 的 Ag NPs 均匀分布在 PAF-54 上,并表现出强烈的局域表面等离子体共振(LSPR)效应。此外,Ag/AgCl/PAF-54 异质结能有效抑制光生电子和空穴的重组,从而增强复合材料的光催化能力。即使催化剂用量很小,也能实现四环素(TC)的快速降解,30 分钟内四环素的降解率达到 94.8%。这项研究为制造具有优异光催化性能的银基持久性有机污染物复合材料提供了一种简便的方法。
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CiteScore
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