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Surface-enhanced Raman scattering and catalytic activity studies over nanostructured Au-Pd alloy films prepared by DC magnetron sputtering

机译:通过DC磁控溅射制备的纳米结构Au-Pd合金膜的表面增强拉曼散射和催化活性研究

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Nanostructured Au33Pd67 alloy films were fabricated on glass using one-step air plasma DC magnetron sputtering. The films exhibited highly sensitive detection of dye molecules (RhB and CV) by the surface-enhanced Raman scattering (SERS). The synthesized films also showed good catalytic properties for the reduction in 4-nitrophenol at pH approximate to 9.8. Such unique characteristic of the films was linked to the evolution of nanostructure, which can be controlled simply by the sputtering time. At the shorter sputtering time (10 and 20 s), the film was composed of isolated particles. By increasing the sputtering time (30 and 40 s), agglomeration of such nanoparticles resulted in the formation of the partially connected island nanostructures (about 38 nm) which can be confirmed by TEM and electrical resistivity measurement. The detection limit of 1 x 10(-12) M RhB and 1 x 10(-8) M CV with an enhancement factor of 7 x 10(7) and 3.3 x 10(4), respectively, was achieved over the film synthesized at the sputtering time of 30 s. The high sensitivity of this film can be ascribed to the strong electromagnetic field at the junction spots formed between the two adjacent islands. Moreover, this film has a slightly lower SERS, and better catalytic properties, in contrast to Au (30 s) film. Finally, the film providing efficient SERS enhancement is not the most active catalyst. Unlike the SERS, the catalytic activity depends highly on the amount of AuPd deposited.
机译:纳米结构的AU33PD67在玻璃上使用单步空气等离子体DC磁控溅射在玻璃上制造合金薄膜。通过表面增强的拉曼散射(SERS),薄膜表现出对染料分子(RHB和CV)的高敏感性检测。合成膜还显示出良好的催化性能,用于将4-硝基苯酚的降低至9.8。薄膜的这种独特的特征与纳米结构的演化相关联,这可以仅通过溅射时间来控制。在较短的溅射时间(10和20s),薄膜由分离的颗粒组成。通过增加溅射时间(30和40秒),这种纳米颗粒的附聚导致部分连接的岛纳米结构(约38nm)形成,其可以通过TEM和电阻率测量来证实。在合成的膜上,分别在合成的薄膜中分别获得1×10(-12)m rHB和1×10(-8)m CV的1×10(-12)m rHB和1×10(-8)m CV在30秒的溅射时间。该膜的高灵敏度可以在两个相邻岛之间形成的接合点处归因于强电磁场。此外,与Au(30秒)薄膜相比,该薄膜具有稍低的Sers和更好的催化性能。最后,提供高效SERS增强的薄膜不是最活跃的催化剂。与SER不同,催化活性高度取决于沉积的AUPD的量。

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