Departamento de Química Fundamental, Instituto de Química, Universidade de São Paulo, Av. Prof. Lineu Prestes, 748, 05508-000, São Paulo-SP, Brazil.
Nanoscale. 2018 May 10;10(18):8560-8568. doi: 10.1039/c8nr00934a.
Plasmonic catalysis takes advantage of the surface plasmon resonance (SPR) excitation to drive or accelerate chemical transformations. In addition to the plasmonic component, the control over metal-support interactions in these catalysts is expected to strongly influence the performances. For example, CeO2 has been widely employed towards oxidation reactions due to its oxygen mobility and storage properties, which allow for the formation of Ce3+ sites and adsorbed oxygen species from metal-support interactions. It is anticipated that these species may be activated by the SPR excitation and contribute to the catalytic activity of the material. Thus, a clear understanding of the role played by the SPR-mediated activation of surface oxide species at the metal-support interface is needed in order to take advantage of this phenomenon. Herein, we describe and quantify the contribution from active surface oxide species at the metal-support interface (relative to O2 from air) to the activities in green SPR-mediated oxidation reactions. We employed CeO2 decorated with Au NPs (Au/CeO2) as a model plasmonic catalyst and the oxidation of p-aminothiophenol (PATP) and aniline as proof-of-concept transformations. We compared the results with SiO2 decorated with Au NPs (Au/SiO2), in which the formation of surface oxide species at the metal-support interface is not expected. We found that the SPR-mediated activation of surface oxide species at the metal-support interface in Au/CeO2 played a pivotal role in the detected activities, being even higher than the contribution coming from the activation of O2 from air.
等离子体催化利用表面等离子体共振(SPR)激发来驱动或加速化学反应。除了等离子体成分外,这些催化剂中金属-载体相互作用的控制预计会强烈影响性能。例如,由于 CeO2 的氧迁移率和存储性能,CeO2 被广泛用于氧化反应,这允许从金属-载体相互作用形成 Ce3+ 位和吸附氧物种。预计这些物种可能会被 SPR 激发激活,并为材料的催化活性做出贡献。因此,为了利用这种现象,需要清楚地了解金属-载体界面上表面氧化物物种的 SPR 介导激活所起的作用。在此,我们描述并量化了金属-载体界面上活性表面氧化物物种(相对于空气中的 O2)对绿色 SPR 介导氧化反应中活性的贡献。我们采用了 Au NPs 修饰的 CeO2(Au/CeO2)作为模型等离子体催化剂,并将对 p-氨基硫酚(PATP)和苯胺的氧化作为概念验证转化。我们将结果与 Au NPs 修饰的 SiO2(Au/SiO2)进行了比较,在后者中,金属-载体界面上表面氧化物物种的形成预计不会发生。我们发现,Au/CeO2 中金属-载体界面上表面氧化物物种的 SPR 介导激活在检测到的活性中起着关键作用,甚至高于来自空气的 O2 激活的贡献。