Analysis of multi-mode to single-mode conversion at 635 nm and 1550 nm

SPIE OPTO Pub Date : 2016-03-15 DOI:10.1117/12.2213333
V. Zamora, Angelina Bogatzki, Norbert Arndt-Staufenbiel, J. Hofmann, H. Schröder
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引用次数: 1

Abstract

We propose two low-cost and robust optical fiber systems based on the photonic lantern (PL) technology for operating at 635 nm and 1550 nm. The PL is an emerging technology that couples light from a multi-mode (MM) fiber to several single-mode (SM) fibers via a low-loss adiabatic transition. This bundle of SM fibers is observed as a MM fiber system whose spatial modes are the degenerate supermodes of the bundle. The adiabatic transition allows that those supermodes evolve into the modes of the MM fiber. Simulations of the MM fiber end structure and its taper transition have been performed via functional mode solver tools in order to understand the modal evolution in PLs. The modelled design consists of 7 SM fibers inserted into a low-index capillary. The material and geometry of the PLs are chosen such that the supermodes match to the spatial modes of the desired step-index MM fiber in a moderate loss transmission. The dispersion of materials is also considered. These parameters are studied in two PL systems in order to reach a spectral transmission from 450 nm to 1600 nm. Additionally, an analysis of the geometry and losses due to the mismatching of modes is presented. PLs are typically used in the fields of astrophotonics and space photonics. Recently, they are demonstrated as mode converters in telecommunications, especially focusing on spatial division multiplexing. In this study, we show the use of PLs as a promising interconnecting tool for the development of miniaturized spectrometers operating in a broad wavelength range.
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635 nm和1550 nm的多模到单模转换分析
我们提出了两种基于光子灯(PL)技术的低成本和鲁棒的光纤系统,分别工作在635 nm和1550 nm。PL是一种新兴技术,通过低损耗绝热跃迁将多模(MM)光纤中的光耦合到几个单模(SM)光纤中。这束SM纤维被观察为一个MM纤维系统,其空间模式是束的简并超模。绝热跃迁允许这些超模演变成MM光纤的模式。通过功能模式求解工具对MM光纤端部结构及其锥度转变进行了模拟,以了解PLs中的模态演变。模型设计由插入低折射率毛细管的7根SM光纤组成。选择PLs的材料和几何形状,使得超模在中等损耗传输中与期望的阶跃折射率MM光纤的空间模相匹配。还考虑了材料的分散。为了达到从450 nm到1600 nm的光谱传输,在两个PL系统中研究了这些参数。此外,还分析了模态不匹配引起的几何和损耗。PLs通常用于天体光子学和空间光子学领域。近年来,它们被证明是电信中的模式转换器,特别是在空分复用方面。在这项研究中,我们展示了使用PLs作为一种有前途的互连工具,用于开发在宽波长范围内工作的小型化光谱仪。
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