研究目的
Investigating the multipolar surface plasmon resonances (SPRs) in gold nanowires with mode energies spanning from ~1000 to 8000 cm?1 using high-energy resolution electron-energy-loss spectroscopy (EELS) to understand the radiative and intrinsic contributions to the total damping rates.
研究成果
The study demonstrates that STEM-EELS can access mid- to near-IR responses in a single acquisition, revealing FP modes with dephasing times >60 fs, almost twice the longest previously reported plasmon dephasing time for individual Au nanoparticles in the infrared. The findings suggest opportunities for harnessing infrared plasmonic energy before dephasing occurs, with potential applications in biosensing and plasmon-mediated chemical reaction control.
研究不足
The experimental linewidths are slightly larger than those in simulations, attributed to additional damping induced with grain boundaries, surface roughness, and imperfections in the lithographic Au nanowires, and substrate effects.
1:Experimental Design and Method Selection:
High-energy resolution (80 cm?1, 10 meV) electron-energy-loss spectroscopy (EELS) in a monochromated and aberration-corrected scanning transmission electron microscope (STEM) was used to resolve multipolar surface plasmon resonances (SPRs) in gold nanowires.
2:Sample Selection and Data Sources:
Gold nanowires of varying lengths (0.5–10 μm) were synthesized and characterized. EELS measurements were conducted with the electron beam placed at an impact parameter of 10 nm from the nanowire’s long axis.
3:5–10 μm) were synthesized and characterized. EELS measurements were conducted with the electron beam placed at an impact parameter of 10 nm from the nanowire’s long axis.
List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: Monochromated aberration-corrected Nion STEM operated at 60 kV, with a collection semiangle of 15 mrad, and a convergence semiangle of 20 mrad.
4:Experimental Procedures and Operational Workflow:
EEL spectra were normalized to the intensity of the zero-loss peak (ZLP), and the substrate contribution was removed using a background spectrum collected from the SiO2 substrate.
5:Data Analysis Methods:
The resonance energies and linewidths were analyzed using analytical modeling and full-wave numerical electrodynamics simulations.
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