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In-situ Homodispersely Immobilization of Ag@AgCl on Chloridized g-C3N4 Nanosheets as an Ultrastable Plasmonic Photocatalyst

DOI:10.1016/j.cej.2019.123259 期刊:Chemical Engineering Journal 出版年份:2019 更新时间:2025-09-19 17:13:59
摘要: Despite their impressive plasmonic photocatalytic activity, nanosized silver and silver halides always suffer from serious agglomeration and photocorrosion, thus are severely restricted in the practical wastewater restoration applications. The design and realization of plasmonic heterojunction nanostructures is an effective way to solve this stability problem, yet the ideal plasmonic catalyst dispersion and immobilization remains a great challenge. In this work, a highly immobilized Ag@AgCl/g-C3N4 plasmonic photocatalyst was developed through a rational in-situ implanting approach, in which the Ag can be homodispersely distributed and strongly coupled with prefixed Cl sites on g-C3N4 nanosheets (CNNS). The X-ray diffraction (XRD) pattern, X-ray photoelectron spectroscopy (XPS) spectra and element mapping images clearly proved the homodispersely distribution of nanosized Ag@AgCl on the CNNS. The optimal Ag@AgCl-3/CNNS plasmonic photocatalyst with a narrow band gap of 2.45 eV and large specific surface area of 52.9 m2/g performs well in model pharmaceutical wastewater bleaching reactions under visible light. More importantly, the Ag@AgCl-3/CNNS show good stability compared with the conventional inhomogeneously coupled AgCl/g-C3N4 control as verified by their ultralow silver leakage rate in water (0.00152 mg/g·d, accounts 6.9% that of the control) and a much lower corrosion current density (Icorr = 1.63 vs. 3.45 μA), recorded by Tafel slopes. The synergetic effect of surface plasmon resonance effect of nanosized Ag@AgCl with strong visible light harvesting ability and strong coupling between Ag@AgCl and exfoliated porous g-C3N4 nanosheets can support the fast separation of photogenerated electron?hole pairs, thus significantly improving the photocatalytic efficiency in the bleaching of antibiotic pollutants and bacteria. This work affords the great potential of the rational in-situ implanting design for high-performance and stable plasmonic photocatalysts.
作者: Di Sun,Yang Zhang,Yanfei Liu,Zegao Wang,Xiaochen Chen,Zheying Meng,Shifei Kang,Yuanyi Zheng,Lifeng Cui,Menglin Chen,Mingdong Dong,Bing Hu
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To develop a highly immobilized Ag@AgCl/g-C3N4 plasmonic photocatalyst through a rational in-situ implanting approach for efficient and stable photocatalytic wastewater restoration.

The in-situ implanting approach successfully developed a highly immobilized Ag@AgCl/g-C3N4 plasmonic photocatalyst with excellent photocatalytic activity and stability under visible light. The prefixed Cl sites on g-C3N4 nanosheets played a critical role in the uniform distribution and strong immobilization of Ag@AgCl, leading to minimized Ag leakage and enhanced anti-corrosion properties. This design offers great potential for practical applications in photocatalytic wastewater restoration.

The study focuses on the photocatalytic performance and stability of Ag@AgCl/CNNS under visible light, but the scalability of the synthesis method and the long-term environmental impact of the photocatalyst require further investigation.

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