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Probing nanoscale spatial distribution of plasmonically excited hot carriers

机译:探讨纳米级空间分布量激发热载体

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Surface plasmons (SPs) of metals enable the tight focusing and strong absorption of light to realize an efficient utilization of photons at nanoscale. In particular, the SP-generated hot carriers have emerged as a promising way to efficiently drive photochemical and photoelectric processes under moderate conditions. In situ measuring of?the transport process and spatial distribution of hot carriers in real space is crucial to efficiently capture the hot carriers. Here, we use electrochemical tip-enhanced Raman spectroscopy (EC-TERS) to in situ monitor an SP-driven decarboxylation and resolve the spatial distribution of hot carriers with a nanometer spatial resolution. The transport distance of about 20?nm for the reactive hot carriers is obtained from the TERS imaging result. The hot carriers with a higher energy have a shorter transport distance. These conclusions can be guides for the design and arrangement of reactants and devices to efficiently make use of plasmonic hot carriers.
机译:金属表面等离子体(SPS)使得光的焦点和光的强吸收,以实现纳米级光子的有效利用。特别地,SP产生的热载体已经出现为有效的方式,可以在中等条件下有效地推动光化学和光电过程。原位测量?实际空间中热载体的运输过程和空间分布对于有效地捕获热载体是至关重要的。这里,我们使用电化学尖端增强拉曼光谱(EC-TERS)原位监测SP驱动的脱羧并解决具有纳米空间分辨率的热载体的空间分布。用于反应热载体的传输距离为反应热载体的结果是从TERS成像结果获得的。具有较高能量的热载体具有较短的运输距离。这些结论可以是用于有效利用等离子体热载体的反应物和器件的设计和排列的指导。

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