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具有1D-0D-2D形貌的高效银改性氧化锌/石墨相氮化碳光催化剂用于亚甲基蓝降解

High-Efficiency Ag-Modified ZnO/g-CN Photocatalyst with 1D-0D-2D Morphology for Methylene Blue Degradation.

作者信息

Qiu Shuyao, Li Jin

机构信息

School of Physical Science and Technology, Xinjiang University, Urumqi 830017, China.

Xinjiang Key Laboratory of Solid State Physics and Devices, Xinjiang University, Urumqi 830017, China.

出版信息

Molecules. 2024 May 7;29(10):2182. doi: 10.3390/molecules29102182.

Abstract

Photocatalysts with different molar ratios of Ag-modified ZnO to g-CN were prepared through an electrostatic self-assembly method and characterized through techniques such as X-ray diffraction, Fourier transform infrared spectroscopy, and scanning electron microscopy. The resulting Ag-ZnO/g-CN photocatalysts exhibited a unique 1D-0D-2D morphology and Z-type heterojunction. Moreover, g-CN nanosheets with large layer spacing were prepared using acid treatment and thermal stripping methods. The Z-type heterostructure and localized surface plasmon resonance effect of Ag nanowires enabled high-speed electron transfer between the materials, while retaining large amounts of active substances, and broadened the light response range. Because of these features, the response current of the materials improved, and their impedance and photoluminescence reduced. Among the synthesized photocatalysts, 0.05Ag-ZnO/g-CN (molar ratio of g-CN/ZnO: 0.05) exhibited the highest photocatalytic performance under UV-visible light. It degraded 98% of methylene blue in just 30 min, outperforming both g-CN (21% degradation in 30 min) and Ag-ZnO (84% degradation in 30 min). In addition, 0.05Ag-ZnO/g-CN demonstrated high cycling stability.

摘要

通过静电自组装法制备了具有不同摩尔比的银改性氧化锌与石墨相氮化碳的光催化剂,并通过X射线衍射、傅里叶变换红外光谱和扫描电子显微镜等技术对其进行了表征。所得的Ag-ZnO/g-CN光催化剂呈现出独特的一维-零维-二维形态和Z型异质结。此外,采用酸处理和热剥离法制备了具有大层间距的石墨相氮化碳纳米片。Ag纳米线的Z型异质结构和局域表面等离子体共振效应实现了材料间的高速电子转移,同时保留了大量活性物质,并拓宽了光响应范围。由于这些特性,材料的响应电流提高,阻抗和光致发光降低。在合成的光催化剂中,0.05Ag-ZnO/g-CN(g-CN/ZnO摩尔比为0.05)在紫外-可见光下表现出最高的光催化性能。它在仅30分钟内就降解了98%的亚甲基蓝,优于石墨相氮化碳(30分钟内降解21%)和Ag-ZnO(30分钟内降解84%)。此外,0.05Ag-ZnO/g-CN表现出高循环稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b1c2/11123889/7efb6588f1e6/molecules-29-02182-g001.jpg

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