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增强可见光光催化性能:负载二氧化锡纳米颗粒的硒棒

Boosting Visible Light Photocatalysis: Se Rods Decorated with SnO Nanoparticles.

作者信息

Mura Stefania, Rassu Pietro, Fiori Federico, Masia Gabriele, Garroni Sebastiano, Marceddu Salvatore, Spissu Ylenia, Malfatti Luca, Innocenzi Plinio

机构信息

Laboratory of Materials Science and Nanotechnology (LMNT), CR-INSTM, Department of Biomedical Sciences, University of Sassari, Viale S. Pietro 43/B, 07100 Sassari, Italy.

Department of Chemistry, Physics, Mathematics and Natural Science, University of Sassari, Via Vienna 2, 07100 Sassari, Italy.

出版信息

Materials (Basel). 2025 Sep 13;18(18):4300. doi: 10.3390/ma18184300.

DOI:10.3390/ma18184300
PMID:41010144
Abstract

Se rods decorated with SnO nanoparticles have been synthesized via a facile hydrothermal approach to bridge the gap between ultraviolet-only and visible-only photocatalysis and to enhance reactive oxygen species generation under visible illumination. Structural and morphological analyses using X-ray diffraction and scanning electron microscopy with energy dispersive spectroscopy have confirmed the coexistence of cassiterite SnO particles intimately interfaced with trigonal selenium rods. Diffuse-reflectance spectroscopy revealed a long absorption tail extending into the 400-550 nm range. Under 450 nm sample illumination, the composite produced singlet oxygen in higher yields than either bare SnO or Se, as evidenced by the indocyanine green assay. The system alone does not produce free radicals, as shown by the terephthalic acid test; however, the addition of rhodamine B acts as an effective sensitizer, enabling hydroxyl radical generation. Photodegradation tests using rhodamine B have shown that the SnO-Se system outperforms both its single components, Se and SnO, as a catalyst. The synergistic interplay underscores the potential of SnO-Se heterostructures in photochemical applications under visible light.

摘要

通过一种简便的水热法合成了装饰有SnO纳米颗粒的硒棒,以弥合仅紫外光催化和仅可见光催化之间的差距,并增强可见光照射下活性氧的产生。使用X射线衍射以及带有能量色散光谱的扫描电子显微镜进行的结构和形态分析证实,锡石SnO颗粒与三角硒棒紧密界面共存。漫反射光谱显示出一条延伸至400 - 550 nm范围的长吸收尾。在450 nm样品光照下,如吲哚菁绿测定所示,该复合材料产生单线态氧的产率高于裸SnO或硒。如对苯二甲酸测试所示,该体系单独不会产生自由基;然而,加入罗丹明B可作为有效的敏化剂,从而产生羟基自由基。使用罗丹明B的光降解测试表明,作为催化剂,SnO - Se体系的性能优于其单一组分硒和SnO。这种协同相互作用突出了SnO - Se异质结构在可见光下光化学应用中的潜力。

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