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Catalytic Application and Mechanism Studies of Argentic Chloride Coupled Ag/Au Hollow Heterostructures: Considering the Interface Between Ag/Au Bimetals

机译:氯化银偶联的Ag / Au中空异质结构的催化应用及机理研究:考虑Ag / Au双金属之间的界面

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摘要

AbstractFor an economical use of solar energy, photocatalysts that are sufficiently efficient, stable, and capable of harvesting light are required. Composite heterostructures composed of noble metals and semiconductors exhibited the excellent in catalytic application. Here, 1D Ag/Au/AgCl hollow heterostructures are synthesized by galvanic replacement reaction (GRR) from Ag nanowires (NWs). The catalytic properties of these as-obtained Ag/Au/AgCl hollow heterostructures with different ratios are investigated by reducing 4-nitrophenol (Nip) into 4-aminophenol (Amp) in the presence of NaBH4, and the influence of AgCl semiconductor to the catalytic performances of Ag/Au bimetals is also investigated. These hollow heterostructures show the higher catalytic properties than pure Ag NWs, and the AgCl not only act as supporting materials, but the excess AgCl is also the obstacle for contact of Ag/Au bimetals with reactive species. Moreover, the photocatalytic performances of these hollow heterostructures are carried out by degradation of acid orange 7 (AO7) under UV and visible light. These Ag/Au/AgCl hollow heterostructures present the higher photocatalytic activities than pure Ag NWs and commercial TiO2 (P25), and the Ag/Au bimetals enhance the photocatalytic activity of AgCl semiconductor via the localized surface plasmon resonance (LSPR) and plasmon resonance energy transfer (PRET) mechanisms. The as-synthesized 1D Ag/Au/AgCl hollow heterostructures with multifunction could apply in practical environmental remedy by catalytic manners.
机译:摘要为了经济地使用太阳能,需要高效,稳定且能够收集光的光催化剂。由贵金属和半导体组成的复合异质结构在催化应用中表现出优异的性能。在这里,一维Ag / Au / AgCl空心异质结构是通过Ag纳米线(NWs)的电置换反应(GRR)合成的。通过在NaBH4存在下将4-硝基苯酚(Nip)还原为4-氨基苯酚(Amp),研究了不同比例的这些Ag / Au / AgCl中空异质结构的催化性能,以及AgCl半导体对催化性能的影响。还研究了银/金双金属的性能。这些空心异质结构显示出比纯Ag NWs更高的催化性能,AgCl不仅充当载体材料,而且过量的AgCl也是Ag / Au双金属与反应性物质接触的障碍。此外,这些空心异质结构的光催化性能是通过在紫外光和可见光下降解酸性橙7(AO7)来实现的。这些Ag / Au / AgCl中空异质结构比纯Ag NWs和市售TiO2(P25)具有更高的光催化活性,并且Ag / Au双金属通过局部表面等离子体激元共振(LSPR)和等离子体激元共振能增强AgCl半导体的光催化活性。转移(PRET)机制。合成后的一维Ag / Au / AgCl空心异质结构具有催化作用,可用于实际的环境修复。

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