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New age fibers: the children of the photonic revolution

机译:新时代的光纤:光子革命的孩子

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摘要

The Photonics Crystal Fibers (PCFs) also know as "holey" or "micro-structured" fibers herald a new age for optical fibers. The astronomical applications could revolutionize instrument design through: broadband performance combined with excellent UV transmission, extremely large numerical aperture fibers, and aperture transforming fibers improving input coupling/sampling while maintaining a good match between the fiber outputs and the detector pixels. The Photonic Crystal effects can provide unprecedented non-linear effects in materials and when combined with micro-photonics it is expected that a photonic chip will be realized in which optical switching, wavelength dispersion and even wavelength conversion could take place. However, conventional optical fibers are currently the benchmark for many astronomical applications and improvements in the performance of silica fibers are also being made. In this paper we present a brief review of the current status of photonic crystal fibers with particular focus on the astronomical applications. In addition we present the optical characterization of a new silica/silica broadband fiber that delivers very good transmission from 300nm to 1100nm and beyond.
机译:光子晶体光纤(PCF)也被称为“多孔”或“微结构”光纤,预示着光纤的新时代。天文应用可以通过以下方面彻底改变仪器设计:宽带性能与出色的紫外线透射率,极大的数值孔径光纤以及孔径转换光纤相结合,可改善输入耦合/采样,同时保持光纤输出与检测器像素之间的良好匹配。光子晶体效应可以在材料中提供空前的非线性效应,当与微光子技术结合使用时,可以实现光开关,波长色散甚至波长转换的光子芯片有望成为现实。然而,常规的光纤目前是许多天文应用的基准,并且二氧化硅光纤的性能也在提高。在本文中,我们简要介绍了光子晶体光纤的当前状态,尤其着重于天文应用。此外,我们还介绍了新型二氧化硅/二氧化硅宽带光纤的光学特性,该光纤可在300nm至1100nm甚至更高的波长范围内提供非常好的透射率。

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