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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Synthesis of novel Au@Void@Nb2O5 core-shell nanocomposites with enhanced photocatalytic activity
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Synthesis of novel Au@Void@Nb2O5 core-shell nanocomposites with enhanced photocatalytic activity

机译:具有增强的光催化活性的新型Au @ void @ Nb2O5核心 - 壳纳米复合材料的合成

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Nb2O5 as a semiconductor material has attracted significant attention in recent years due to its outstanding advantages. In this article, novel Au@Void@Nb2O5 core-shell nanocomposites have been fabricated through a facile sol-gel method. The construction process of this core-shell nanostructure has been presented in detail. The as-prepared core-shell nanostructure exhibits nanosphere morphology with Nb2O5 acting as the shell and Au nanoparticles acting as the core, which was proved using SEM and TEM. The noble metal Au core protected by the Nb2O5 shell promotes an interfacial charge-transfer process. The core-shell nanocomposites demonstrate excellent visible light absorption, as shown by the UV-Vis diffuse reflectance spectra. The as-prepared photocatalyst Au@Void@Nb2O5-2 calcined at 300 degrees C exhibits higher photocatalytic efficiency than Au@Void@Nb2O5-2- 300 degrees C, Nb2O5 and P25, as evaluated by the degradation of rhodamine B (Rh B) under visible light. In the photodegradation process of the Rh B solution, holes (h+) play a more important role than hydroxyl radicals ((OH)-O-center dot) over the as-prepared photocatalyst, which was analyzed using active species trapping experiments and photoluminescence ( PL) spectroscopy. Moreover, the photocatalyst Au@Void@Nb2O5-2 calcined at 300 degrees C exhibits excellent durability of its photocatalytic activity even after five successive cycles. This contribution gives a new perspective for designing and preparing novel metal-Nb2O5 nanostructure catalysts applied in environmental treatments.
机译:由于其出色的优势,NB2O5作为半导体材料引起了显着的关注。在本文中,通过溶胶 - 凝胶法制造了新的Au @ Void @ Nb2O5核 - 壳纳米复合材料。已经详细介绍了该核 - 壳纳米结构的结构方法。制备的核心壳纳米结构与Nb2O5表现出用作壳和用作核心的壳体和Au纳米颗粒的纳米形态,使用SEM和TEM证明。受Nb2O5壳保护的贵金属Au核心促进界面电荷转移过程。核 - 壳纳米复合材料表现出优异的可见光吸收,如UV-VI扩散反射光谱所示。在300摄氏度下煅烧的AS制备的光催化剂Au @ void @ Nb2O5-2表现出比Au @ Nb2O5-2- 300℃,Nb2O5和P25的光催化效率更高,如罗丹明B的降解评估的那样(RH B)。在可见光下。在Rh B溶液的光降解过程中,孔(H +)在用作制备的光催化剂上比羟基自由基((OH)-O-中心点)发挥更重要的作用,其使用活性物质捕获实验和光致发光( PL)光谱学。此外,在300摄氏度下煅烧的光催化剂Au @ Nb2O5-2即使在五个连续循环之后也表现出光催化活性的优异耐久性。该贡献给出了在环境治疗中的设计和制备新的金属-NB2O5纳米结构催化剂的新透视。

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