Department of Physics and Astronomy, University of New Mexico , Albuquerque, New Mexico 87131, United States.
ICFO - Institut de Ciencies Fotoniques , The Barcelona Institute of Science and Technology , 08860 Castelldefels (Barcelona), Spain.
Nano Lett. 2015 Oct 14;15(10):6946-51. doi: 10.1021/acs.nanolett.5b02883. Epub 2015 Sep 24.
Aluminum nanocrystals and fabricated nanostructures are emerging as highly promising building blocks for plasmonics in the visible region of the spectrum. Even at the individual nanocrystal level, however, the localized plasmons supported by Al nanostructures possess a surprisingly broad spectral response. We have observed that when an Al nanocrystal is coupled to an underlying Al film, its dipolar plasmon resonance linewidth narrows remarkably and shows an enhanced scattering efficiency. This behavior is observable in other plasmonic metals, such as gold; however, it is far more dramatic in the aluminum nanoparticle-film system, reducing the dipolar plasmon linewidth by more than half. A substrate-mediated hybridization of the dipolar and quadrupolar plasmons of the nanoparticle reduces the radiative losses of the dipolar plasmon. While this is a general effect that applies to all metallic nanoparticle-film systems, this finding specifically provides a new mechanism for narrowing plasmon resonances in aluminum-based systems, quite possibly expanding the potential of Al-based plasmonics in real-world applications.
铝纳米晶体和纳米结构的出现,为可见光谱范围内的等离子体学提供了极具前景的构建模块。然而,即使在单个纳米晶体水平上,由铝纳米结构支撑的局域等离子体也具有惊人的宽光谱响应。我们已经观察到,当一个铝纳米晶体与下面的铝膜耦合时,它的偶极等离子体共振线宽显著变窄,并显示出增强的散射效率。这种行为在其他等离子体金属中也可以观察到,如金;然而,在铝纳米粒子-薄膜系统中,这种行为更为显著,将偶极等离子体线宽减小了一半以上。通过基质介导的纳米粒子的偶极子和四极子等离子体的杂化,降低了偶极等离子体的辐射损耗。虽然这是一个适用于所有金属纳米粒子-薄膜系统的普遍现象,但这一发现为在基于铝的系统中缩小等离子体共振提供了一个新的机制,很可能会扩大基于铝的等离子体在实际应用中的潜力。