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用于增强可见光和太阳光光催化的 TiO2 和金属纳米颗粒之间的光切换型多金属氧酸盐夹层。

UV-switchable polyoxometalate sandwiched between TiO2 and metal nanoparticles for enhanced visible and solar light photococatalysis.

机构信息

School of Applied Science, RMIT University, GPO Box 2476 V, Melbourne, Victoria 3001, Australia.

出版信息

Langmuir. 2011 Aug 2;27(15):9245-52. doi: 10.1021/la201655n. Epub 2011 Jul 7.

DOI:10.1021/la201655n
PMID:21711019
Abstract

To improve the photocatalytic efficiency of TiO(2)-based nanomaterials, we demonstrate a facile, generalized, highly localized reduction approach to the decoration of TiO(2)-polyoxometalate composites with a range of metal nanoparticles including Cu, Ag, Pt, and Au. The synthesis of nanocomposite photococatalysts reported in this study has been achieved by utilizing the unique ability of the TiO(2)-bound PTA (phosphotungstic acid) molecules (a polyoxometalate, POM) to act as a highly localized UV-switchable reducing agent that specifically reduces metal ions to their nanoparticulate forms directly and only onto the TiO(2) surface. This leads to the metal contaminant-free synthesis of TiO(2)-PTA-metal nanocomposites, which is a significant advantage of the proposed approach. The study further demonstrates that polyoxometalates are regenerable photoactive molecules with outstanding electron-transfer ability and the deposition of metal nanoparticles on the TiO(2)-PTA cocatalytic surface can have a dramatic effect on increasing the overall photocatalytic performance of the composite system. Moreover, it is observed that the photococatalytic performance of the TiO(2)-PTA-metal nanoparticles can be fine tuned by choosing the composition of metal nanoparticles in the nanocomposite. Interestingly, the photococatalysts reported here are found to be active under visible and simulated solar-light conditions. The underlying reaction mechanism for enhanced solar-light photococatalysis has been proposed.

摘要

为了提高基于 TiO2 的纳米材料的光催化效率,我们展示了一种简便、通用、高度局部的还原方法,用于在 TiO2-多金属氧酸盐复合材料上修饰一系列金属纳米粒子,包括 Cu、Ag、Pt 和 Au。本研究中报道的纳米复合材料光催化剂的合成是通过利用 TiO2 结合的 PTA(磷钨酸)分子(一种多金属氧酸盐,POM)的独特能力来实现的,这些分子可以作为一种高度局部的 UV 可切换还原剂,直接且仅将金属离子还原成其纳米颗粒形式到 TiO2 表面上。这导致了无金属污染物的 TiO2-PTA-金属纳米复合材料的合成,这是所提出方法的一个显著优势。该研究进一步表明,多金属氧酸盐是可再生的光活性分子,具有出色的电子转移能力,并且金属纳米粒子在 TiO2-PTA 共催化表面上的沉积可以显著提高复合体系的整体光催化性能。此外,观察到通过选择纳米复合材料中金属纳米粒子的组成,可以精细调整 TiO2-PTA-金属纳米粒子的光催化性能。有趣的是,这里报道的光催化剂在可见光和模拟太阳光条件下都具有活性。提出了增强太阳光光催化的潜在反应机制。

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