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Effect of Adhesion layer on the Optical Scattering Properties of Plasmonic Au Nanodisc

机译:粘附层对等离子金纳米盘光学散射特性的影响

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Metallic nanostructures have great potential for bio-chemical sensor applications due to the excitation of localized surface plasmon and its sensitive response to environmental change. Unlike the commonly explored absorption-based sensing, the optical scattering provides single particle detection scheme. For the localized surface plasmon resonance spectroscopy, the metallic nanostructures with controlled shape and size have been usually fabricated on adhesion-layer pre-coated transparent glass substrates. In this study, we calculated the optical scattering properties of plasmonic Au nanodisc using a discrete dipole approximation method and analyzed the effect of adhesion layer on them. Our result also indicates that there is a trade-off between the surface plasmon damping and the capability of supporting nanostructures in determining the optimal thickness of adhesion layer. Marginal thickness of Ti adhesion layer for supporting Au nanostructures fabricated on a silica glass substrate was experimentally analyzed by an adhesion strength test using a nano-indentation technique.
机译:金属纳米结构由于局部表面等离子体激元的激发及其对环境变化的敏感响应,在生化传感器应用中具有巨大潜力。与通常探索的基于吸收的传感不同,光学散射提供了单个粒子检测方案。对于局部表面等离子体共振光谱,通常在粘合层预涂覆的透明玻璃基板上制造具有受控形状和尺寸的金属纳米结构。在这项研究中,我们使用离散偶极近似法计算了等离子金纳米盘的光学散射特性,并分析了粘附层对其的影响。我们的结果还表明,在确定最佳粘附层厚度时,在表面等离振子阻尼和支持纳米结构的能力之间需要权衡。通过使用纳米压痕技术的粘合强度测试,对用于支撑在二氧化硅玻璃基板上制造的Au纳米结构的Ti粘合层的边缘厚度进行了实验分析。

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