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Lab-on-fiber technology for advanced plasmonic nano-optrodes

机译:先进的等离激元纳米电极的光纤实验室技术

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Optical fibers technology has experienced a tremendous growth and advancement over the past several decades, not only in transmission systems for communications (where nowadays totally dominate especially at the high performances level) but also in the sensing field. For this reason, there is an ever increasing need to add new functionalities and improve the performances, through the integration on the optical fibers of advanced functional materials providing the control and manipulation of light at nanoscale. Both metallic and dielectric nanostructures (in particular photonic and plasmonic crystals) seem to meet that need since they offer unprecedented opportunities for sub-wavelength field confinement and resonant field enhancement. Many prestigious research groups in the photonic community are thus focusing their efforts to fuse together the world of nanotechnologies with optical fibers, leading to the development of a novel and intriguing technology known as “Lab on Fiber”. The integration of nanostructures within optical fibers is giving rise to a new generation of highly functionalized all in-fiber nanoprobes which, being easily and remotely connectable to complex illumination systems and demodulation units, may partially overcome the issue related to the extreme integration of all the components required at lab-on-chip level. In order to address the fabrication issues and adapt modern nanotechnologies facilities to properly work on unconventional substrates such as the case of optical fibers, different strategies and processes have been recently proposed. Among them, our multidiscilinary research group has demonstrated a reliable fabrication path which allows to integrate onto the tip of a standard single mode optical fiber both metallic and dielectric materials patterned at micro and nano-scale by means of a direct writing approach.
机译:在过去的几十年中,光纤技术不仅在通讯传输系统中(如今在高性能方面尤其占主导地位)而且在传感领域也经历了巨大的发展和进步。由于这个原因,通过将先进的功能材料集成在光纤上以提供纳米级的光的控制和操纵,对增加新的功能和改善性能的需求不断增长。金属和介电纳米结构(特别是光子和等离子体晶体)似乎都满足了这一需求,因为它们为亚波长场限制和共振场增强提供了前所未有的机会。因此,光子学界中许多著名的研究小组都在集中精力,将纳米技术与光纤融合在一起,从而开发了一种新颖而有趣的技术,即“光纤实验室”。光纤中纳米结构的整合产生了新一代高度功能化的所有光纤中纳米探针,这些纳米探针可以轻松且远程地连接至复杂的照明系统和解调单元,可以部分克服与所有光纤的极端整合有关的问题。芯片级实验室所需的组件。为了解决制造问题并使现代纳米技术设备能够在非常规基底(例如光纤)上正常工作,最近提出了不同的策略和工艺。其中,我们的多学科研究小组展示了一条可靠的制造路径,该路径允许通过直接写入方法将微米级和纳米级图案化的金属和介电材料集成到标准单模光纤的尖端。

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