摘要
设计高性能光纤是实现高功率光纤激光器功率提升的重要环节。为解决复杂光纤结构数字化设计难题,在光纤光学理论的基础上,初步开发了光纤波导结构设计仿真软件——SeeNano。本文介绍了多层折射率光纤的部分理论模型以及该软件的基本功能和两个典型案例,利用该软件计算了模场分布、有效折射率、有效模场面积、色散等重要参数,并将计算结果与商用软件计算结果进行了比较。该软件可在一定程度上降低多层折射率光纤的研究和设计难度,有望推动国产光纤设计软件的发展。
Objective The objective of this study is to enhance the power of high-power fiber lasers by designing high-performance fibers and to overcome the challenges associated with the digital design of complex fiber structures.Currently,the optical characteristic parameters of fibers are primarily obtained through experimental measurements or numerical calculations,which are expensive and difficult to accomplish.Therefore,the development of fiber modeling and simulation software for aiding the design is particularly urgent.Existing commercial fiber photonics simulation software typically present issues such as complex operation and non-specialization.In this study,SeeNano,which is a fiber-waveguide structure-design software,was developed.We analyze the cross-sectional structure of multilayer refractive-index fibers from the lateral dimension,establishe various material library models,and optimize the characteristic parameters of the fibers by analyzing their mode,loss,and dispersion characteristics to provide new solutions for enhancing the power of high-performance fibers and high-power fiber lasers.Methods First,the optical scale of fiber waveguides was considered via mathematical modeling and software development.Initially,a numerical model of the characteristic equation transmission matrix for fibers and other dedicated algorithm models were established to provide a theoretical basis for calculating the fiber mode-field,loss,and dispersion characteristics.Subsequently,based on software engineering,a fiber-waveguide design and simulation software named SeeNano was developed,which features a simple and intuitive graphical user interface with a guided operation flow.It was designed to help users understand the usage of the software promptly and reduce the learning difficulty.Subsequently,the design processes of two cases,i.e.,step-and graded-index trenchassisted cases,were introduced,and key characteristic parameters,such as the effective mode-field area,effective mode-field diameter,material dispersion,and waveguide dispersion,were calculated and compared with the results yielded by the commercial software OptiFiber to validate the results.However,the functionality of the software is not yet completed,and the developed features target primarily concentric multilayer refractive-index fibers.Hence,the software functionality must be continuously supplemented and gradually enhanced.Results and Discussions The design of different layers,such as rings(higher refractive index)or grooves(lower refractive index),in the design of novel step-or graded-index multilayer refractive-index fibers has been adopted increasingly in various scenarios to satisfy specific application requirements.This paper introduces the design cases of step-and graded-index trench-assisted fibers.Under different evaluation parameters,the simulation results were compared with those obtained using commercial software OptiFiber.This paper presents comparisons of the mode-field intensity distributions for different fiber structures(Figs.4 and 7).The effective refractive indices of various modes with eight significant figures match(Tables 2 and 4),and the variations in the mode-field diameter and effective mode area with wavelength show consistent results(Fig.5).The dispersion curves of material dispersion,waveguide dispersion,and total dispersion as a function of wavelength are similar in most cases(Fig.8).Conclusions This paper introduces the basic functions and case demonstrations of preliminarily developed fiber-waveguide structure design and simulation software,SeeNano.The software provides assistance and guidance in the optimal design of fibers and the selection of fiber parameters,thus enhancing the efficiency of fiber design.The accuracy of the software calculations was verified by comparing simulation results with those obtained using the commercial software OptiFiber.This reduces the difficulty in investigating and designing multilayer refractive-index fibers,reduces the dependence on foreign softwares,and promotes the development of domestic fiber-design softwares.Notably,our research and development team has developed a fiber-laser simulation software named SeeFiberLaser,which begins from the fiber-structure scale and considers the processes of various nonlinear effects,the mode evolution,and the coupling of various physical effects under different time-domain regimes.The software analyzes the effects of fiber device parameters on the laser power,spectrum,and pulse evolution in the longitudinal dimension.The next step is to conduct laser-fiber performance modeling and analysis on the full parameter dimension and multiphysical scale.By continuously improving the basic theory and performing collaborations to develop fibers and fiber-laser software,the associated application requirements shall be satisfied.
作者
段磊
谭姝丹
徐帆江
Duan Lei;Tan Shudan;Xu Fanjiang(National Key Laboratory of Space Integrated Information System,Institute of Software,Chinese Academy of Sciences,Beijing 100190,China)
出处
《中国激光》
EI
CAS
CSCD
北大核心
2024年第19期237-245,共9页
Chinese Journal of Lasers
基金
国家重点研发计划(2022YFB3606000)。