4.8 Article

Pronounced Fano Resonance in Single Gold Split Nanodisks with 15 nm Split Gaps for Intensive Second Harmonic Generation

期刊

ACS NANO
卷 10, 期 12, 页码 11105-11114

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.6b05979

关键词

surface plasmon; Fano resonance; second harmonic generation; split disks; sketch and peel lithography

资金

  1. National Natural Science Foundation of China [11274107, 11574078, 11304219, 11574228]
  2. Hong Kong Research Grants Council (ECS) [509513]
  3. Foundation for the authors of National Excellent Doctorial Dissertation of China [201318]
  4. Natural Science Foundation of Hunan Province [2015JJ1008, 2015RS4024]
  5. Program for the Top Young Academic Leaders of Higher Learning Institutions of Shanxi

向作者/读者索取更多资源

Single metallic nanostructures supporting strong Fano resonances allow more compact nanophotonics integration and easier geometrical control in practical applications such as enhanced spectroscopy and sensing. In this work, we designed a class of plasmonic split nanodisks that show pronounced Fano resonance comparable to that observed in widely studied plasmonic oligomer clusters. Using our recently developed sketch and peel electron-beam lithography, split nanodisks with varied diameter and split length were fabricated over a large area with high uniformity. Transmission spectroscopy measurements demonstrated that the fabricated structures with 15 nm split gap exhibit disk diameter and split length controlled Fano resonances in the near-infrared region, showing excellent agreement with simulation results. Together with the plasmon hybridization theory, in-depth full-wave analyses elucidated that the Fano resonances observed in the split nanodisks were induced by mode interference between the bright antibonding dipole mode of split disks and the subradiant mode supported by the narrow split gap. With the giant near-field enhancement enabled by the intensive Fano resonance at the tiny split gap, strong wavelength-dependent second harmonic generation was observed under near infrared excitation. Our work demonstrated that single split nanodisks could serve as important building blocks for plasmonic and nanophotonic applications including sensing and nonlinear optics.

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