首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Interband Transitions Are More Efficient Than Plasmonic Excitation in the Ultrafast Melting of Electromagnetically Coupled Au Nanoparticles
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Interband Transitions Are More Efficient Than Plasmonic Excitation in the Ultrafast Melting of Electromagnetically Coupled Au Nanoparticles

机译:在电磁耦合Au纳米粒子超快熔化中,间带式转变比等离子体激发更有效

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摘要

We investigated the effects of ultrafast laser excitation of Au nanoparticles (NPs) having strong interparticle electromagnetic coupling by irradiating the NPs either at interband or plasmon-resonance wavelengths (13-100 J/m(2) fluence regime). We observed that interband excitation is significantly more efficient than plasmonic excitation in reshaping, coalescing, and ultimately sublimating the NPs, despite the light-absorption cross section of interband excitation being almost half that of plasmonic irradiation. We ascribed this to the different localizations of radiation-induced heat sources in the strongly coupled NPs in the two cases. Interband excitation induces homogeneous heat generation in Au, and so the conventional NP heating pathway is followed, eventually leading to overall melting, coalescence, and ablation of Au. Plasmonic irradiation, on the other hand, promotes strong localization of the heat sources within small energetic hot spots, a fact that we suggest may lead to nonthermal effects that melt and reshape the NPs only on the local scale, leaving the system otherwise relatively unscathed.
机译:我们研究了通过在间带或等离子体 - 共振波长(13-100J / m(2)注量状态)中通过照射NPS具有强颗粒电磁耦合具有强颗粒电磁偶联的US纳米颗粒(NPS)的影响。我们观察到,尽管间带式激励的光吸收横截面几乎是等离子体照射的几乎一半的光吸收横截面,所以观察到的间带激励显着比浆料,聚结,并最终升华在升上NPS中的升高。在两种情况下,我们将其归因于辐射诱导的热源的不同本地化。 Interband励磁在Au中诱导均匀的发热,因此遵循常规的NP加热路径,最终导致整体熔化,聚结和Au消融。另一方面,等离子体照射促进了在小精力充沛的热点内的热源的强烈定位,这是我们建议的事实可能导致融化并仅在当地规模上熔化并重塑NPS的非热效果,以否则相对毫伤地离开该系统。

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