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Quantifying photothermal heating at plasmonic nanoparticles by scanning electrochemical microscopy

机译:通过扫描电化学显微镜量定量等离子体纳米粒子的光热加热

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摘要

Photothermal heating at metal nanoparticles results from the non-radiative decay of localized surface plasmons. The local heat generation enhances the mass transport rate of redox molecules and causes a shift in their formal potential, both of which can impact an electrochemical process at the nanoparticle interface. Here we present a methodology for probing the surface temperature at a plasmonic nanoparticle substrate using scanning electrochemical microscopy (SECM). Light is used to excite a plasmonic substrate electrode, while an ultramicroelectrode tip is positioned close to the substrate to read out both the mass transfer rate and concentration profile of the redox molecules. The measured mass transfer rate and the shift in the equilibrium potential provide a quantitative value of the temperature increase at the substrate surface, which is verified by simulations using a mass transfer model coupled with heat dissipation. The developed SECM approach is suitable for probing heat generation at a variety of both plasmonic and non-plasmonic nanostructures.
机译:金属纳米粒子的光热加热是由局部表面等离子体的非辐射腐烂的。局部发热增强了氧化还原分子的质量传递速率,并导致其正式电位的变化,这两者都会影响纳米颗粒界面处的电化学过程。在这里,我们介绍了一种使用扫描电化学显微镜(SECM)探测等离子体纳米粒子衬底处的表面温度的方法。光用于激发等离子体基板电极,而超微电极尖端靠近基板定位,以读出氧化还原分子的传质速率和浓度曲线。测量的质量传递速率和平衡电位的偏移提供了基板表面的温度升高的定量值,其通过使用与散热器耦合的传质模型进行仿真验证。开发的SECM方法适用于探测各种等离子体和非等离子体纳米结构的热产生。

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