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Quasi-linearly polarized hybrid modes in tapered and metal-coated tips with circular apertures: understanding the functionality of aperture tips

机译:具有圆形孔径的锥形和金属涂层吸头中的准线性极化混合模式:了解孔径吸头的功能

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In this study, we investigate analytically and experimentally the roles of quasi-linearly polarized (LP), hybrid, plasmonic and photonic modes in optical detection and excitation with aperture tips in scanning near-field optical microscopy. Aperture tips are tapered and metal-coated optical fibers where small circular apertures are made at the apex. In aperture tips, there exist plasmonic modes that are bound at the interface of the metal cladding to the inner dielectric fiber and photonic modes that are guided in the area of the increased index in the dielectric fiber core. The fundamental photonic mode, although excited by the free-space Gaussian beam, experiences cutoff and turns into an evanescent mode. The photonic mode also becomes lossier than the plasmonic mode toward the tip aperture, and its power decay due to absorption and reflection is expected to be at least 10?9. In contrast, the fundamental plasmonic mode has no cutoff and thus reaches all the way to the tip aperture. Due to the non-adiabaticity of both modes' propagations through the taper below a core radius of 600 nm, there occurs coupling between the modes. The transmission efficiency of the plasmonic mode, including the coupling efficiency and the propagation loss, is expected to be about 10?6 that is at least 3 orders of magnitude larger than that of the photonic mode. Toward the tip aperture, the longitudinal field of the photonic mode becomes stronger than the transverse ones while the transverse fields always dominate for the plasmonic mode. Experimentally, we obtain polarization resolved images of the near-field at the tip aperture and compare with the x- and y-components of the fundamental quasi-LP plasmonic and photonic modes. The results show that not only the pattern but also the intensity ratios of the x- and y-components of the aperture near-field match with that of the fundamental plasmonic mode. Consequently, we conclude that only the plasmonic mode reaches the tip aperture and thus governs the near-field interaction outside the tip aperture. Our conclusion remains valid for all aperture tips regardless of the cladding metal type that mainly influences the total transmission efficiency of the aperture tip.
机译:在这项研究中,我们通过分析和实验研究准线性偏振(LP),混合,等离子和光子模式在光学检测和具有孔径尖端的扫描近场光学显微镜激发中的作用。孔尖端是锥形的金属涂层光纤,在顶点处形成小圆形孔。在孔径尖端中,存在在金属包层与内部介电纤维的界面处束缚的等离子体模式和在介电纤维芯中折射率增加的区域中引导的光子模式。基本的光子模式尽管受到自由空间高斯光束的激发,但会发生截止并转变为an逝模式。光子模式也比等离子模式朝着尖端孔径的方向变得损耗更大,并且由于吸收和反射而导致的功率衰减预计至少为10 9。相反,基本等离激元模式没有截止,因此一直到达尖端孔。由于两种模式在中心半径600 nm以下通过锥的传播都具有非绝热性,因此模式之间会发生耦合。等离子体耦合模式的传输效率,包括耦合效率和传播损耗,预计约为10 6 6,比光子模式至少高3个数量级。朝向尖端孔,光子模式的纵向场变得比横向场强,而横向场对于等离子模式总是占主导地位。实验上,我们获得了尖端孔径处近场的偏振分辨图像,并与基本LP等离子体激元和光子模式的x和y分量进行了比较。结果表明,不仅模式,而且孔径近场的x和y分量的强度比都与基本等离激元模式的强度比相匹配。因此,我们得出的结论是,只有等离激元模式到达尖端孔径,并因此控制了尖端孔径外部的近场相互作用。我们的结论对于所有孔径尖端均保持有效,而与主要影响孔径尖端的总传输效率的包层金属类型无关。

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