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Facile tuning of Ag@AgCl cubical hollow nanoframes with efficient sunlight-driven photocatalytic activity

机译:利用高效的阳光驱动的光催化活性轻松调节Ag @ AgCl立方空心纳米框架

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摘要

In this work, a facile controlled synthesis of plasmonic photocatalyst, Ag@AgCl hollow cubic cage with the tuning of nanoframe structures was reported. AgCl cubical hollow nanoframes were primarily prepared using sacrificial NaCl template protocol. Ion exchange reaction between Ag+ in the solution and NaCl, in presence of poly(vinylpyrrolidone) (PVP) led to continuous nucleation followed by growth of AgCl on the surface of sacrificial NaCl template. The tuning of AgCl nanoframe structures was obtained by changing the AgNO3 concentration in the reactions. Afterwards, ethylene glycol assisted reduction of AgCl, produced Ag@AgCl, the metal@semiconductor composite with the homogeneous distribution of Ag nanoparticles on the surface of the AgCl hollow nanoframes. Efficient sunlight-driven photocatalytic activity to degrade Methylene blue (MB) (50 mL; 10 mg/L) with these Ag@AgCl hollow frames was also demonstrated. The plasmonic photocatalysts were exhibited photodegradation rates about 0.098-0.184 min(-1) with high catalytic activity and recyclability for five cycles. Additionally, active species entrapping experiments were performed and a possible mechanism for the enhanced photocatalytic performance of the synthesized plasmonic photocatalyst was also proposed.
机译:在这项工作中,已经报道了一种可控的等离子光催化剂Ag @ AgCl空心立方笼的合成方法,并且可以调节纳米框架的结构。主要使用牺牲NaCl模板协议制备AgCl立方空心纳米框架。在存在聚乙烯吡咯烷酮(PVP)的情况下,溶液中的Ag +与NaCl之间的离子交换反应导致连续成核,随后AgCl在牺牲NaCl模板的表面上生长。通过改变反应中AgNO 3的浓度可以调节AgCl纳米框架的结构。之后,乙二醇协助还原AgCl,制得Ag @ AgCl,这是一种金属@半导体复合材料,在AgCl中空纳米框架的表面上具有均匀分布的Ag纳米颗粒。这些Ag @ AgCl中空框架还证明了有效的阳光驱动的光催化活性可降解亚甲基蓝(MB)(50 mL; 10 mg / L)。等离子体光催化剂表现出约0.098-0.184 min(-1)的光降解速率,具有高催化活性和五个循环的可回收性。此外,进行了活性物种捕获实验,并提出了可能的机制,以提高合成的等离激元光催化剂的光催化性能。

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