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首页> 外文期刊>Journal of Raman Spectroscopy: An International Journal for Original Work in All Aspects of Raman Spectroscopy, Including Higher Order Processes, and Also Brillouin- and Rayleigh Scattering >In situ surface-enhanced Raman spectroscopic monitoring electrochemical and surface plasmon resonance synergetic catalysis on dehydroxylation of PHTP at Ag electrodes
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In situ surface-enhanced Raman spectroscopic monitoring electrochemical and surface plasmon resonance synergetic catalysis on dehydroxylation of PHTP at Ag electrodes

机译:原位表面增强拉曼光谱监测电化学和表面等离子体共振协调催化在Ag电极中PHTP的脱羟基化

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Surface plasmon resonance (SPR)-driven heterogeneous catalytic reactions have attracted considerable interests. However, the application of SPR was restricted in few types of surface reaction; the extension of SPR-catalyzed reaction still remains significant challenge. The introduction of additional external fields is expected to generate the synergetic effect for improving the performance of SPR catalytic reaction. Herein, the roughened Ag electrode played as a substrate for introducing the second external field, that is, electrochemical control. A probe molecule, p-hydroxythiophenol (PHTP), was preanchored onto Ag electrodes and surface-enhanced Raman spectroscopy was employed to monitor the surface processes. It demonstrated that the PHTP underwent the dehydroxylation reaction to produce the thiophenol (TP) by the appropriate excitation line and potentials. It disappeared on Ag roughened electrodes without electrochemical control or on a smooth charged surface attached with shell-isolated nanoparticles. It suggested that the dehydroxylation reaction was contributed by the synergetic effects of localized SPR and applied potential. The results revealed that the efficiency of dehydroxylation was critically depended on wavelength and power of laser, potential, as well as solution pH. The hydrogen sources were essential for dehydroxylation and protonated hydroxyl group promoted the process for producing TP, thus, the dehydroxylation of PHTP was more favorable in acidic solution than that in a neutral case, while it was inhibited completely in alkaline environment. With the appropriate potential, the size of the nanostructures on Ag electrode surface and the corresponding surface plasmon band resulted in the higher efficiency with matched laser wavelength at about 532 nm. The synergetic effects of SPR and potential allowed the extension of the SPR catalysis to a new catalogue of surface reaction, that is, dehydroxylation. It was beneficial to develop the SPR catalysis
机译:表面等离子体共振(SPR) - 驱动的异构催化反应引起了相当大的兴趣。然而,SPR的应用受到少量表面反应; SPR催化反应的延伸仍然仍然存在重大挑战。预计额外的外部领域的引入将产生改善SPR催化反应性能的协同效果。这里,粗糙的Ag电极作为用于引入第二外场的基板,即电化学控制。探针分子,p-羟基苯酚(PHTP)被预先加到Ag电极上,采用表面增强拉曼光谱检查表面过程。它证明了PHTP经历了脱羟基化反应以通过适当的激发线和电位产生噻吩酚(TP)。它在无电化学控制的Ag粗糙电极上消失,或者在用壳隔离的纳米粒子附着的光滑的带电表面上消失。表明脱羟基化反应是通过局部SPR和施加电位的协同作用贡献。结果表明,脱羟基化的效率尺寸依赖于激光,电位以及溶液pH的波长和功率。氢气源对于脱羟基化和质子化羟基是必不可少的,促进生产TP的方法,因此,PHTP的脱羟基化在酸性溶液中比中性壳体更有利,而在碱性环境中被完全抑制。通过适当的电位,Ag电极表面和相应的表面等离子体频带上的纳米结构的尺寸导致较高的激光波长在约532nm的较高效率。 SPR和潜力的协同效应使SPR催化的延伸延伸至新目录,即脱羟基化。开发SCR催化是有益的

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