研究目的
To investigate the radiations of high-order plasmon modes in large gold nanospheres excited by evanescent waves, enabling control over electric field orientation and enhanced detection capabilities.
研究成果
Evanescent wave excitation effectively enhances scattering intensity and suppresses background noise, allowing for the revelation of high-order plasmon modes like the electric quadrupole in both spatial and frequency domains. This method is valuable for characterizing nanoparticle radiations and designing nanophotonic devices with directional properties.
研究不足
The study is limited to gold nanospheres on silica substrates; effects of other materials or environments are not explored. The experimental setup requires precise alignment and control of polarization, which may be challenging. Numerical simulations assume ideal conditions and may not fully capture all experimental variations.
1:Experimental Design and Method Selection:
The study uses evanescent wave excitation in a total internal reflection configuration to excite gold nanospheres, with numerical simulations based on Mie theory and finite-difference time-domain (FDTD) techniques.
2:Sample Selection and Data Sources:
Gold nanospheres with diameters from 80-560 nm fabricated via femtosecond laser ablation on a silica substrate, characterized using scanning electron microscopy and optical measurements.
3:List of Experimental Equipment and Materials:
Includes a femtosecond amplifier (Legend Elite, Coherent), scanning electron microscope (Ultra55, Zeiss), inverted microscope (Axio Observer A1, Zeiss), spectrometer (SR-500i-B1, Andor), CCD camera (DS-Ri2, Nikon), and objectives (e.g., 100×, NA=
4:7-3, Plan-NEOFWAR, Zeiss). Experimental Procedures and Operational Workflow:
Samples are excited with s- and p-polarized white light in a prism setup, scattering light is collected with an objective and analyzed with a polarization analyzer, and data is processed using FDTD simulations.
5:Data Analysis Methods:
Multipole expansion and FDTD simulations are used to analyze scattering spectra and radiation patterns, with comparisons to experimental results.
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femtosecond amplifier
Legend Elite
Coherent
Generates femtosecond laser pulses for fabricating gold nanospheres via laser ablation.
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scanning electron microscope
Ultra55
Zeiss
Examines the morphologies and sizes of the fabricated gold nanospheres.
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inverted microscope
Axio Observer A1
Zeiss
Used for optical characterization of scattering properties, equipped with spectrometer and CCD.
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spectrometer
SR-500i-B1
Andor
Measures scattering spectra of the gold nanospheres.
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objective
Plan-NEOFWAR
Zeiss
Collects scattering light in the forward direction with adjustable numerical aperture.
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CCD camera
DS-Ri2
Nikon
Records radiation patterns and images of scattering light.
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