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New Insights into Electrocatalysis Based on Plasmon Resonance for the Real-Time Monitoring of Catalytic Events on Single Gold Nanorods

机译:基于等离子共振的电催化实时监测单金纳米棒催化事件的新见解

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摘要

Gold nanoparticles (GNPs) have been widely applied in industrial catalysis and electrocatalysis. Owing to their wide variety of shapes, sizes, and compositions, a range of different catalytic properties is possible. Thus, it is important to monitor catalytic processes and their mechanisms on single GNP surfaces to avoid averaging effects in bulk systems. Therefore, a novel method based on dark-field scattering spectroscopy was developed to monitor, in real-time, the electrocatalytic oxidation of hydrogen peroxide on a single gold nanoparticle surface. The catalytic mechanism was revealed via the plasmon resonance scattering spectral shift of single gold nanorod with the elimination of bulk effect. Moreover, we found that the presence of chloride ions could block the catalytic activity of nanorods for the oxidation of H_2O_2. Most importantly, it was discovered that individual nanoparticles have variable properties with different spectra shifts during the catalytic process. The obtained optical signals from individual nanorods not only offer versatile information regarding the reaction but also improve the understanding of electrochemistry and the catalysis mechanism of single nanoparticles.
机译:金纳米颗粒(GNP)已广泛应用于工业催化和电催化。由于它们的形状,大小和组成多种多样,因此可能具有一系列不同的催化性能。因此,重要的是监测单个GNP表面上的催化过程及其机理,以避免在整体系统中平均影响。因此,开发了一种基于暗场散射光谱学的新方法来实时监测单个金纳米粒子表面上过氧化氢的电催化氧化。通过消除单个金纳米棒的等离振子共振散射光谱位移揭示了催化机理。此外,我们发现氯离子的存在可以阻止纳米棒对H_2O_2氧化的催化活性。最重要的是,发现单个纳米颗粒在催化过程中具有随光谱变化而变化的特性。从单个纳米棒获得的光信号不仅提供了有关反应的通用信息,而且还改善了对电化学和单个纳米颗粒催化机理的理解。

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