Research Institute for Electronic Science, Hokkaido University , Sapporo 001-0021, Japan.
Institute of Physics, University of Tsukuba , Tsukuba 305-8571, Japan.
ACS Nano. 2016 Nov 22;10(11):10373-10381. doi: 10.1021/acsnano.6b06206. Epub 2016 Oct 28.
The extraordinary optical properties of coupled plasmonic nanostructures make these materials potentially useful in many applications; thus, they have received enormous attention in basic and applied research. Coupled plasmon modes have been characterized predominantly using far-field spectroscopy. In near-field spectroscopy, the spectral response of local field enhancement in coupled plasmonic nanostructures remains largely unexplored, especially experimentally. Here, we investigate the coupled gold dolmen nanostructures in the near field using photoemission electron microscopy, with wavelength-tunable femtosecond laser pulses as an excitation source. The spatial evolution of near-field mapping of an individual dolmen structure with the excitation wavelength was successfully obtained. In the near field, we spatially resolved an anti-bonding mode and a bonding mode as the result of plasmon hybridization. Additionally, the quadrupole plasmon mode that could be involved in the formation of a Fano resonance was also revealed by spatially resolved near-field spectra, but it only contributed little to the total near-field enhancement. On the basis of these findings, we obtained a better understanding of the near-field properties of coupled plasmonic nanostructures, where the plasmon hybridization and the plasmonic Fano resonance were mixed.
耦合等离子体纳米结构的非凡光学性质使这些材料在许多应用中具有潜在的用途;因此,它们在基础和应用研究中受到了极大的关注。耦合等离子体模式主要使用远场光谱学进行表征。在近场光谱学中,耦合等离子体纳米结构中局部场增强的光谱响应在很大程度上仍未得到探索,特别是在实验方面。在这里,我们使用光电子发射显微镜研究了近场中的金斗姆纳米结构,使用波长可调谐的飞秒激光脉冲作为激发源。成功获得了随激发波长变化的单个斗姆结构近场映射的空间演化。在近场中,我们空间分辨出了由于等离子体杂化而产生的反键模式和键合模式。此外,还通过空间分辨的近场光谱揭示了可能参与形成 Fano 共振的四极子等离子体模式,但它对总近场增强的贡献很小。基于这些发现,我们更好地理解了混合等离子体杂化和等离子体 Fano 共振的耦合等离子体纳米结构的近场性质。