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Highly efficient plasmonic tip design for plasmon nanofocusing in near-field optical microscopy

机译:高效电浆尖端的等离子体的设计在近场光学显微镜nanofocusing

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Near-field scanning optical microscopy (NSOM) combined with plasmon nanofocusing is a powerful nano-analytical tool due to its attractive feature of efficient background suppression as well as light energy compression to the nanoscale. In plasmon nanofocusing-based NSOM, the metallic tip plays an important role in inducing plasmon nanofocusing. It is, however, very challenging to control plasmonic properties of tips for plasmon nanofocusing with existing tip fabrication methods, even though the plasmonic properties need to be adjusted to experimental environments such as the sample or excitation wavelength. In this study, we propose an efficient tip design and fabrication which enable one to actively control plasmonic properties for efficient plasmon nanofocusing. Because our method offers flexibility in the material and structure of tips, one can easily modify the plasmonic properties depending on the requirements. Importantly, through optimization of the plasmonic properties, we achieve almost 100% reproducibility in plasmon nanofocusing in our experiments. This new approach of tip fabrication makes plasmon nanofocusing-based NSOM practical and reliable, and opens doors for many scientists working in related fields.
机译:近场扫描光学显微镜(NSOM)结合等离子体nanofocusing是强大的nano-analytical工具由于其吸引力功能的有效背景抑制光能量的压缩纳米级。金属中发挥着重要作用诱导等离子体nanofocusing。非常具有挑战性的控制电浆性质与现有的等离子体nanofocusing的技巧提示制备方法,尽管电浆属性需要调整如样品或实验环境激发波长。一个有效的设计和制造使一个积极控制电浆高效的等离子体nanofocusing的属性。因为我们的方法提供了灵活性材料和结构技巧,很容易根据修改电浆属性要求。电浆的属性,我们几乎达到等离子体nanofocusing再现性100%我们的实验。制造使等离子体nanofocusing-based NSOM实用、可靠,并打开门科学家在相关领域工作。

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