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使用金纳米结构薄膜的等离子体增强光催化反应。

Plasmonic-enhanced photocatalysis reactions using gold nanostructured films.

作者信息

Ibrahem Mohammed A, Rasheed Bassam G, Mahdi Rahman I, Khazal Taha M, Omar Maryam M, O'Neill Mary

机构信息

Laser Sciences and Technology Branch, Applied Sciences Department, University of Technology Baghdad Iraq

Laser and Optoelectronic Engineering Department, College of Engineering, Al-Nahrain University Baghdad Iraq.

出版信息

RSC Adv. 2020 Jun 10;10(38):22324-22330. doi: 10.1039/d0ra03858j.

Abstract

This work shows the enhancement of the visible photocatalytic activity of TiO NPs film using the localized surface plasmonic resonance of Au nanostructures. We adopted a simple yet effective surface treatment to tune the size distribution, and plasmonic resonance spectrum of Au nanostructured films on glass substrates, by hot plate annealing in air at low temperatures. A hybrid photocatalytic film of TiO:Au is utilized to catalyse a selective photodegradation reaction of Methylene Blue in solution. Irradiation at the plasmonic resonance wavelength of the Au nanostructures provides more effective photodegradation compared to broadband artificial sunlight of significantly higher intensity. This improvement is attributed to the active contribution of the plasmonic hot electrons injected into the TiO. The broadband source initiates competing photoreactions in the photocatalyst, so that carrier transfer from the catalyst surface to the solution is less efficient. The proposed hybrid photocatalyst can be integrated with a variety of device architectures and designs, which makes it highly attractive for low-cost photocatalysis applications.

摘要

这项工作展示了利用金纳米结构的局域表面等离子体共振增强TiO NPs薄膜的可见光光催化活性。我们采用了一种简单而有效的表面处理方法,通过在空气中低温热板退火来调节玻璃基板上金纳米结构薄膜的尺寸分布和等离子体共振光谱。TiO:Au混合光催化薄膜用于催化溶液中亚甲基蓝的选择性光降解反应。与强度显著更高的宽带人工阳光相比,在金纳米结构的等离子体共振波长处进行照射可提供更有效的光降解。这种改进归因于注入到TiO中的等离子体热电子的积极贡献。宽带光源在光催化剂中引发竞争性光反应,从而使载流子从催化剂表面转移到溶液中的效率较低。所提出的混合光催化剂可以与各种器件架构和设计集成,这使其在低成本光催化应用中极具吸引力。

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