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Disentangling charge carrier from photothermal effects in plasmonic metal nanostructures

机译:使电荷载流子脱离等离子体金属纳米结构中的光热效应

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摘要

Plasmon-mediated chemical reactions (PMCRs) constitute a vibrant research field, advancing such goals as using sunlight to convert abundant precursors such as CO2 and water to useful fuels and chemicals. A key question in this burgeoning field which has not, as yet, been fully resolved, relates to the precise mechanism through which the energy absorbed through plasmonic excitation, ultimately drives such reactions. Among the multiple processes proposed, two have risen to the forefront: plasmon-increased temperature and generation of energetic charge carriers. However, it is still a great challenge to confidently separate these two effects and quantify their relative contribution to chemical reactions. Here, we describe a strategy based on the construction of a plasmonic electrode coupled with photoelectrochemistry, to quantitatively disentangle increased temperature from energetic charge carriers effects. A clear separation of the two effects facilitates the rational design of plasmonic nanostructures for efficient photochemical applications and solar energy utilization.
机译:等离子体介导的化学反应(PMCR)构成了一个生机勃勃的研究领域,推进了诸如使用阳光将大量的前驱物(例如CO2和水)转化为有用的燃料和化学品的目标。这个新兴领域中的一个关键问题尚未得到完全解决,它涉及通过等离激元激发吸收的能量最终驱动这种反应的精确机制。在提出的多种过程中,有两个已经上升到最前沿:等离子体激元升高的温度和高能电荷载流子的产生。然而,自信地分离这两种效应并量化它们对化学反应的相对贡献仍然是一个巨大的挑战。在这里,我们描述了基于等离激元电极与光电化学耦合构造的策略,以定量地将增加的温度从高能电荷载流子效应中解开。两种效应的明确分离有助于合理设计等离激元纳米结构,以实现有效的光化学应用和太阳能利用。

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