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The design and fabrication of the metallic nano-annular aperture structure on the glass and the study of its optical property

机译:玻璃上的金属纳米环形孔结构的设计与制造及其光学性能的研究

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The concentrated local electric field on a substrate surface is very helpful to enhance the signal for surface-enhanced Raman scattering (SERS) and surface plasmon resonance (SPR) techniques. In this research, the metallic nano-cylinder, the nano-hole, and nano-annular aperture structures on the glass have been simulated by the finite difference time domain method (FDTD) first to understand the localized surface plasmon resonance (LSP) of them. The simulations for different inner diameters, outer diameters and thickness of the gold film have been done and the better dimension and film thickness which can induce the largest electric field concentration have been chosen. We coated 2 nm and 5 nm thick chromium(Cr), and 50nm and 60nm thick gold(Au) films on SF2 glass substrate, respectively. The different nano-annular aperture structures were successfully patterned on them by using focus ion beam (FIB) to etching gold film surface. Using the OB Morph measurement to observe the structure caused by the SPR shifted. The transmission spectrometer has been adapted to measurement the substrate to observe the spectrum of them. Different concentrations of sodium chloride(NaCl) solutions also have been measured on the different substrates, and the shift of the transmission light wave peak was detected..
机译:衬底表面上集中的局部电场对于增强表面增强拉曼散射(SERS)和表面等离子体共振(SPR)技术的信号非常有帮助。在这项研究中,首先通过时域有限差分法(FDTD)对玻璃上的金属纳米圆柱体,纳米孔和纳米环形孔结构进行了模拟,以了解它们的局部表面等离子体共振(LSP) 。已经完成了对金膜的不同内径,外径和厚度的模拟,并且选择了可以引起最大电场集中的更好的尺寸和膜厚。我们分别在SF2玻璃基板上涂覆了2 nm和5 nm厚的铬(Cr)以及50nm和60nm厚的金(Au)膜。通过使用聚焦离子束(FIB)蚀刻金膜表面,成功在其上构图了不同的纳米环形孔结构。使用OB Morph测量来观察由SPR偏移引起的结构。透射光谱仪已经适于测量基底以观察它们的光谱。在不同的基板上还测量了不同浓度的氯化钠(NaCl)溶液,并检测了透射光波峰的移动。

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