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Experimental measurement of surface plasmon resonance of pyramidal metal nanoparticle tips

机译:金字塔金属纳米粒子尖端表面等离子体共振的实验测量

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We report on the fabrication, experimental characterization and modeling of atomic force microscope (AFM) probes with pyramidal optical antennas fabricated at the ends of the tips. These are being developed for tip-enhanced near-field scanning optical microscopy. We use focused ion beam milling to etch a gold-coated Si 3N4 AFM tip, resulting in a pyramidal gold nanoparticle (188- 240 nm long) at the end of the tip. Using finite-difference time-domain (FDTD) simulations, we estimate the electric field distribution around the nanoparticle as a function of incident wavelength for nanoparticles of various lengths. We experimentally measure the scattering spectra of fabricated probes and show enhanced scattering associated with the localized surface plasmon resonance of the tip. Both simulations and experiments show that an increase of the tip length results in a redshift of the tip resonance wavelength. These pyramidal metal nanoparticle tips could be used for either mapping the field distribution of nanophotonic devices or high spatial resolution spectroscopy.
机译:我们报告了在尖端末端制造的金字塔光学天线的原子力显微镜(AFM)探针的制造,实验表征和建模。这些正在开发用于尖端增强的近场扫描光学显微镜。我们使用聚焦离子束铣削来蚀刻镀金的Si 3N4 AFM尖端,导致尖端末端的金字塔型金纳米粒子(188-240nm长)。使用有限差分时间域(FDTD)模拟,我们估计纳米粒子周围的电场分布作为各种长度的纳米颗粒的入射波长的函数。我们通过实验测量制造探针的散射光谱,并显示与尖端的局部表面等离子体共振相关的增强散射。模拟和实验都表明,尖端长度的增加导致尖端谐振波长的红移。这些金字塔金属纳米粒子尖端可用于绘制纳米光电装置的场分布或高空间分辨率光谱。

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