首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Biofilm-Assisted Fabrication of Ag@SnO2-g-C3N4 Nanostructures for Visible Light-Induced Photocatalysis and Photoelectrochemical Performance
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Biofilm-Assisted Fabrication of Ag@SnO2-g-C3N4 Nanostructures for Visible Light-Induced Photocatalysis and Photoelectrochemical Performance

机译:生物膜辅助制备Ag @ SnO2-G-C3N4纳米结构,用于可见光诱导的光催化和光电化学性能

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摘要

Development of advanced materials with a benign environmentally friendly approach for heterogeneous visible light photocatalysis is always preferable. An environmentally favorable approach was used to anchor silver nanoparticles (Ag NPs) to tin oxide-decorated-graphitic carbon nitride (SnO2-g-C3N4) using a biofilm as a green reducing tool for the biogenic synthesis of 1-6 mM Ag@SnO2-g-C3N4 nanostructures (NSs). The fabricated NSs were characterized using sophisticated techniques. The developed Ag@SnO2-g-C3N4 NSs showed a well-defined spherical-shaped Ag NPs anchored to SnO2-g-C3N4 NSs. The synthesized NSs were applied for photocatalytic degradation of hazardous dyes and photoelectrochemical studies. A comparative investigation of Ag@SnO2-g-C(3)N(4 )NSs for the visible light-assisted photocatalytic degradation of Methylene blue (MB), Congo red (CR), and Rhodamine B (RhB) was performed. The photocatalytic degradation of MB, CR, and RhB reached similar to 99% in 90 min, similar to 98% in 60 min, and -94% in 240 min, respectively. The anchoring of Ag NPs to SnO2-g-C3N4 NSs further enhanced the visible light photocatalytic degradation of the dyes due to surface plasmon resonance and by lowering the recombination of the photogenerated electrons and holes. Further, high electron transfer ability of Ag@SnO2-g-C3N4 NSs was investigated by electrochemical impedance spectroscopy to understand the mechanistic insights of the excellent activity under visible light irradiation. Hence, the present study provides an environmentally benign approach for the synthesis and excellent visible light effective photocatalysis and photoelectrochemical performance.
机译:具有良性环保型方法的先进材料的开发,始终优选为异质可见光光电催化。使用生物膜作为生物化合成的生物化合成为1-6mm Ag的生物过度工具将环氧化物装饰 - 石墨碳氮化物(SnO2-G-C3N4)固定到氧化银纳米颗粒(Ag NPS)到氧化银 - 装饰 - 石墨碳氮化物(SnO2-G-C3N4)。 -G-C3N4纳米结构(NSS)。使用复杂的技术表征制造的NSS。开发的AG @ SnO2-G-C3N4 NSS显示了一个定义明确的球形AG NPS,锚定为SnO2-G-C3N4 NSS。合成的NSS用于危险染料和光电化学研究的光催化降解。进行了Ag @ SnO2-G-C(3)N(4)NSS对可见光辅助光催化降解亚甲基蓝(MB),刚果红(Cr)和罗丹明B(RHB)的比较研究。 MB,Cr和RHB的光催化降解达到90分钟的99%,类似于60分钟的98%,分别为-94%,240分钟。 Ag NPS对SnO2-G-C3N4 NSS的锚定进一步增强了由于表面等离子体共振引起的染料的可见光光催化降解,并通过降低光发生的电子和孔的重组。此外,通过电化学阻抗光谱研究了Ag @ SnO2-G-C3N4 NSS的高电子转移能力,以了解可见光照射下优异活性的机械洞察力。因此,本研究为合成和优异的可见光有效的光催化和光电化学性能提供了环境良好的方法。

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