研究目的
Investigating the spectral evolution of gap plasmon resonance as the particle-film spacing varies from over 30 nm to the touching limit, and understanding the transition of the coupling interaction from capacitive to charge transfer.
研究成果
The study provides a complete picture of plasmon coupling as the gap length varies from over 30 nm to the touching limit. Continuous peak energy red-shifting and linewidth narrowing were observed up to the tunneling limit, contrary to the nonlocal and Landau damping effects. The results suggest that nanorods are better suited for creating cavity plasmon resonances with high quality factor, and the spectral contrast at the transition provides clarity to develop improved theoretical modeling of optical coupling at subnanometer gap lengths.
研究不足
The non-uniformity of the oxide thickness at small number of growth cycles may affect the observation of different spectra for different AuNRs. The study is limited to the coupling of gold nanorods to gold film, and the findings may not directly apply to other materials or configurations.
1:Experimental Design and Method Selection:
The study implemented nanoparticle-on-film configuration by coupling colloidal gold nanorods (AuNRs) to gold film (AuF) with aluminum oxide film as a spacer layer controlled using atomic layer deposition (ALD). The optical properties were studied by measuring the dark-field scattering spectra of individual AuNRs at different aluminum oxide spacer thicknesses.
2:Sample Selection and Data Sources:
Colloidal gold nanorods were used as opposed to nanospheres for their sharp plasmon resonances. The aluminum oxide film was deposited on e-beam evaporated Au film.
3:List of Experimental Equipment and Materials:
Picosun ALD system, atomic force microscope, variable angle spectroscopic ellipsometry (VASE), transmission electron microscope (TEM), dark-field objective with numerical aperture of
4:Experimental Procedures and Operational Workflow:
The oxide film was deposited by pulsing trimethylaluminium and water vapors alternately in N2 carrier gas. The thickness was varied by changing the ALD cycle numbers. Dark-field scattering spectra were recorded for individual AuNRs at different spacer thicknesses.
5:Data Analysis Methods:
The plasmon resonance peak energies and linewidths were extracted from the scattering spectra by fitting Lorentzian function to the data.
独家科研数据包,助您复现前沿成果,加速创新突破
获取完整内容