一种具有不同横向偏移和角度不对准的低模光纤熔接的有效评价模型

IF 1.1 4区 物理与天体物理 Q4 OPTICS
Feng Liu, Zhicheng Huang, Tianle Gu, Ping Wu
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引用次数: 0

摘要

本文基于一组尺度自适应的拉盖尔-高斯模式,提出了一种理论模型,用于评价由横向偏移和角度失调引起的不同空间模式之间的模式耦合效率和模式串扰。对三模光纤进行了模型验证,结果表明,不同模式的耦合效率和模式串扰在轴向偏移和不对准方向存在的情况下表现不同。结果表明,该方法可扩展到具有大量模态的FMFs分析中。在此模型的基础上,分析了耦合效率对不同FMF参数下熔接条件的容差。结果表明:FMF归一化频率V越大,空间模耦合对横向偏置值的容差越小;随着V值的增大,自耦合效率和模串扰对角度失调的容忍度有规律地变化。因此,需要严格控制不同FMF参数下熔接片的横向偏移和角度失调,以达到合适的模式耦合效率和模式串扰。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An efficient evaluation model of fusion splice with different transverse offset and angular misalignment for few mode fiber

In this paper, based on a scale-adapted set of Laguerre-Gaussian modes, a theoretical model has been presented for evaluating the coupling efficiency of modes and mode crosstalk between different spatial modes caused by transverse offset and angular misalignments. A proof-of-model demonstration is performed for three-mode fiber, and the results show that the coupling efficiency and mode crosstalk of various modes behaves differently in the presence of axial offset and the direction of the misalignment. And it is also demonstrated that the proposed scheme can be scalable to analyze the FMFs with a large number of modes. On the basis of this model, the tolerance of coupling efficiency to the fusion splice conditions with different FMF parameter is analyzed. The results show that the larger the FMF normalized frequency V, the smaller the tolerance of spatial mode coupling to the transverse offset value. With the increase of V value, the tolerance of self-coupling efficiency and mode crosstalk to angular misalignments changes regularly. Therefore, the transverse offset and angular misalignments of fusion splice with different FMF parameters need to be strictly controlled to achieve suitable mode coupling efficiency and mode crosstalk.

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来源期刊
Optical Review
Optical Review 物理-光学
CiteScore
2.30
自引率
0.00%
发文量
62
审稿时长
2 months
期刊介绍: Optical Review is an international journal published by the Optical Society of Japan. The scope of the journal is: General and physical optics; Quantum optics and spectroscopy; Information optics; Photonics and optoelectronics; Biomedical photonics and biological optics; Lasers; Nonlinear optics; Optical systems and technologies; Optical materials and manufacturing technologies; Vision; Infrared and short wavelength optics; Cross-disciplinary areas such as environmental, energy, food, agriculture and space technologies; Other optical methods and applications.
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