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Chemically modified nanofoci unifying plasmonics and catalysis

机译:化学修饰的纳米焦点统一等离子体激元反应和催化

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A plasmonic nanofocus, often in the form of a nanogap, is capable of concentrating light in a nanometric volume. The greatly enhanced electromagnetic field offers many opportunities in physics and chemistry. However, the lack of a method to fine-tune the chemical activities of the nanofocus has severely limited its application. Here we communicate an intriguing class of chemically modified nanofoci (CMNFs) that are able to address this challenge. Our results successfully demonstrate a possibility to functionalize the nanosized, mass-transport-restricted nanogap (nanofocus) of a dimeric gold nanoparticle assembly with homo-(Au) and heterogeneous (Ag, Pt, and Pd) materials. The as-produced structures with conductive Au and Ag junctions generate a novel form of charge transfer plasmon (CTP) with continuously tunable frequency covering the visible and near-infrared domains. In addition, the Ag materials can be displaced by catalytic Pt and Pd metals while still maintaining a tightly focused electromagnetic field. These hybrid structures with unified catalytic and plasmonic properties enable real-time, on-site probing of catalytic conversions at the nanofocus by plasmon-enhanced Raman scattering. The chemically/optically engineered CMNFs represent the simplest function-integrated nanodevices for plasmonics, sensing, and catalysis. Our work not only realizes chemical CTP reshaping, but also allows chemical functionalization into an intensified plasmonic near-field. The latter may enable unconventional chemical reactions driven by the catalytically functionalized, strongly boosted light field.
机译:通常呈纳米间隙形式的等离激元纳米焦点能够将光聚集在纳米级体积中。大大增强的电磁场为物理和化学提供了许多机会。然而,缺乏微调纳米焦点化学活性的方法严重限制了其应用。在这里,我们交流了能够解决这一挑战的一类有趣的化学修饰纳米焦点(CMNF)。我们的结果成功地证明了用均质(Au)和异质(Ag,Pt和Pd)材料对二聚体金纳米颗粒组件的纳米尺寸,受质量限制的纳米间隙(nanofocus)进行功能化的可能性。带有导电Au和Ag结的生产结构产生了一种新型电荷转移等离子体激元(CTP),其频率连续可调,覆盖可见光和近红外域。此外,Ag材料可以被催化性Pt和Pd金属置换,同时仍保持紧密聚焦的电磁场。这些具有统一催化和等离激元性质的杂化结构可通过等离激元增强的拉曼散射在纳米焦点实时,现场探测催化转化。化学/光学工程设计的CMNF代表了用于等离子,感应和催化的最简单的功能集成纳米器件。我们的工作不仅实现化学CTP整形,还使化学功能化成为增强的等离子体近场。后者可以实现由催化功能化的,强烈增强的光场驱动的非常规化学反应。

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