搜索

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

长周期光纤光栅傅里叶模式耦合理论

曾祥楷 饶云江

引用本文:
Citation:

长周期光纤光栅傅里叶模式耦合理论

曾祥楷, 饶云江

Theory of Fourier mode coupling for long-period fiber gratings

Rao Yun-Jiang, Zeng Xiang-Kai
PDF
导出引用
  • 建立了长周期光纤光栅傅里叶模式耦合理论.在分析同向模式耦合时,发现了同向耦合模式的振幅系数间存在傅里叶变换关系.推导了长周期光纤光栅的同向耦合谱和透射谱的通用表达式.该理论是用傅里叶变换分析得出长周期光纤光栅折射率微扰的空域谱,再对该空域谱进行模式同向耦合分析,从而得到长周期光纤光栅光谱特性的通用表达式.根据该理论模拟分析了长周期光纤光栅在不同长度和微扰幅值时的光谱特性,与传统耦合模理论进行了对比分析.结果表明,该长周期光纤光栅傅里叶模式耦合理论具有简单、精确和高效的特点,与实际长周期光纤光栅的透射谱特性一致.应用该理论可分析无过耦合的任意轴向折射率微扰分布的长周期光纤光栅光谱特性.
    A novel theory, namely, Fourier mode coupling (FMC) theory for long-period fiber gratings (LPFGs) is proposed in this paper. During analyzing the co-propagating coupling between the core mode and cladding modes in LPFGs, the Fourier transform relations among the amplitude coefficients of co-propagating coupled-modes are found for the first time, to the best of authors’ knowledge. The general expressions of the coupling and transmission spectra of LPFGs are also deduced from the combination of Fourier transform with the well-known coupled-mode theory. In the proposed FMC theory, the spectral characteristics of the LPFGs without over-coupling are derived from the calculation of co-propagating mode coupling in the spatial domain spectrum, which is the Fourier transform result of refractive index perturbation in the LPFG. According to the FMC theory, the spectra of the LPFGs in different perturbation amplitudes and lengths are numerically simulated here. A measured transmission spectrum is also compared with the calculated transmission spectra based on the FMC theory and the coupled mode theory, respectively. The comparison shows that the FMC theory and the derived spectra for LPFGs are in consistance with the coupled-mode theory and the practical spectra of LPFGs respectively. The FMC has many features, these being simple, fast and accurate, which could be employed for spectrum analysis of any LPFG with an arbitrary distribution of refractive index perturbation along the fiber axis.
    [1]

    Vengsarkar A M, Lemaire P J, Judkins J B, Bhatia V, Erdogan T, Sipe J E 1996 J. Lightwave Technol. 14 58

    [2]

    Erdogan T 1997 J. Opt. Soc. Am. A 14 1760

    [3]

    Erdogan T 1997 J. Lightwave Technol. 15 1277

    [4]

    Chern G W, Wang L A 1999 J. Opt. Soc. Am. A 16 2675

    [5]

    Peral E, Capmany J 1997 J. Lightwave Technol. 15 1295

    [6]

    Bouzid A, Abushagur M A G 1997 Appl. Opt. 36 558

    [7]

    Erdogan T 2000 J. Opt. Soc. Am. A 17 2113

    [8]

    Lee K S, Erdogan T 2001 Electron. Lett. 37 156

    [9]

    Patrick H J, Kersey A D, Bucholtz F 1998 J. Lightwave Technol. 16 1606

    [10]

    MacDougall T W, Pilevar S, Haggans C W, Jackson M A 1998 IEEE Photon. Technol. Lett. 10 1449

    [11]

    Zhang D S, Jiang L, Zhang W G, Li L J, Fan W D, Yuan S Z, Kai G Y, Dong X Y 2003 Acta Phys. Sin. 52 3087 (in Chinese) [张东生、姜 莉、张伟刚、李丽君、范万德、袁树忠、 开桂云、董孝义 2003 52 3087] 〖12] Stegall D B, Erdogan T 1999 IEEE Photon. Technol. Lett. 11 343

    [12]

    Xu X H, Cui Y P 2003 Acta Phys. Sin. 52 96 (in Chinese) [徐新华、崔一平 2003 52 96]

    [13]

    Zhu T, Song Y, Rao Y J, Zhu Y 2009 Acta Phys. Sin. 58 4738 (in Chinese) [朱 涛、宋 韵、饶云江、朱 永 2009 58 4738]

    [14]

    Marcuse D 1974 Theory of Dielectric Optical Waveguide (New York: Academic Press)

    [15]

    Fang J X, Cao Z Q, Yang F Z 1987 Physical Foundation of Optical Waveguide Technology (Shanghai: Shanghai Jiaotong University Press)(in Chinese)[方俊鑫、曹庄琪、杨傅子 1987光波导技术物理基础 (上海:上海交通大学出版社)]

    [16]

    Monerie M 1982 IEEE Microwave Theor. Techn. 30 381

  • [1]

    Vengsarkar A M, Lemaire P J, Judkins J B, Bhatia V, Erdogan T, Sipe J E 1996 J. Lightwave Technol. 14 58

    [2]

    Erdogan T 1997 J. Opt. Soc. Am. A 14 1760

    [3]

    Erdogan T 1997 J. Lightwave Technol. 15 1277

    [4]

    Chern G W, Wang L A 1999 J. Opt. Soc. Am. A 16 2675

    [5]

    Peral E, Capmany J 1997 J. Lightwave Technol. 15 1295

    [6]

    Bouzid A, Abushagur M A G 1997 Appl. Opt. 36 558

    [7]

    Erdogan T 2000 J. Opt. Soc. Am. A 17 2113

    [8]

    Lee K S, Erdogan T 2001 Electron. Lett. 37 156

    [9]

    Patrick H J, Kersey A D, Bucholtz F 1998 J. Lightwave Technol. 16 1606

    [10]

    MacDougall T W, Pilevar S, Haggans C W, Jackson M A 1998 IEEE Photon. Technol. Lett. 10 1449

    [11]

    Zhang D S, Jiang L, Zhang W G, Li L J, Fan W D, Yuan S Z, Kai G Y, Dong X Y 2003 Acta Phys. Sin. 52 3087 (in Chinese) [张东生、姜 莉、张伟刚、李丽君、范万德、袁树忠、 开桂云、董孝义 2003 52 3087] 〖12] Stegall D B, Erdogan T 1999 IEEE Photon. Technol. Lett. 11 343

    [12]

    Xu X H, Cui Y P 2003 Acta Phys. Sin. 52 96 (in Chinese) [徐新华、崔一平 2003 52 96]

    [13]

    Zhu T, Song Y, Rao Y J, Zhu Y 2009 Acta Phys. Sin. 58 4738 (in Chinese) [朱 涛、宋 韵、饶云江、朱 永 2009 58 4738]

    [14]

    Marcuse D 1974 Theory of Dielectric Optical Waveguide (New York: Academic Press)

    [15]

    Fang J X, Cao Z Q, Yang F Z 1987 Physical Foundation of Optical Waveguide Technology (Shanghai: Shanghai Jiaotong University Press)(in Chinese)[方俊鑫、曹庄琪、杨傅子 1987光波导技术物理基础 (上海:上海交通大学出版社)]

    [16]

    Monerie M 1982 IEEE Microwave Theor. Techn. 30 381

  • [1] 王剑, 马超, 王东辉, 孟令知, 王洪业, 苑立波. 离轴螺旋长周期光纤光栅特性研究.  , 2023, 72(13): 130701. doi: 10.7498/aps.72.20230415
    [2] 吴航, 陈燎, 舒学文, 张新亮. 基于飞秒激光加工长周期光栅的全光纤三阶轨道角动量模式的产生.  , 2023, 72(4): 044201. doi: 10.7498/aps.72.20221928
    [3] 李加红, 孙贵花, 张庆礼, 王小飞, 张德明, 刘文鹏, 高进云, 郑丽丽, 韩松, 陈照, 殷绍唐. 退火气氛对GdScO3和Yb:GdScO3晶体的结构和光谱性质的影响.  , 2022, 71(16): 164206. doi: 10.7498/aps.71.20220196
    [4] 闫忠宝, 孙帅, 张帅, 张尧, 史伟, 盛泉, 史朝督, 张钧翔, 张贵忠, 姚建铨. 二氧化钒相变对太赫兹反谐振光纤谐振特性的影响及其应用.  , 2021, 70(16): 168701. doi: 10.7498/aps.70.20210084
    [5] 刘家兴, 刘侠, 钟守东, 王健强, 张大鹏, 王兴龙. 光纤光栅对的参数匹配与激光输出特性.  , 2019, 68(11): 114205. doi: 10.7498/aps.68.20190178
    [6] 张伟刚, 张严昕, 耿鹏程, 王标, 李晓兰, 王松, 严铁毅. 新型长周期光纤光栅的设计与研制进展.  , 2017, 66(7): 070704. doi: 10.7498/aps.66.070704
    [7] 谢辰, 胡明列, 徐宗伟, 兀伟, 高海峰, 张大鹏, 秦鹏, 王艺森, 王清月. 光纤激光器直接输出的高功率贝塞尔超短脉冲.  , 2013, 62(6): 064203. doi: 10.7498/aps.62.064203
    [8] 陈海云, 顾铮(一先), 杨颖. 镀膜长周期光纤光栅的单峰宽带滤波特性.  , 2012, 61(20): 200702. doi: 10.7498/aps.61.200702
    [9] 肖进, 张庆礼, 周文龙, 谭晓靓, 刘文鹏, 殷绍唐, 江海河, 夏上达, 郭常新. Nd3+:Gd3Sc2Al3O12 晶场能级及拟合.  , 2010, 59(10): 7306-7313. doi: 10.7498/aps.59.7306
    [10] 曾祥楷, 饶云江. Bragg光纤光栅傅里叶模式耦合理论.  , 2010, 59(12): 8597-8606. doi: 10.7498/aps.59.8597
    [11] 邓传鲁, 顾铮珗. 材料色散对LPFG双峰谐振效应特性的影响.  , 2009, 58(5): 3230-3237. doi: 10.7498/aps.58.3230
    [12] 朱涛, 史翠华, 饶云江, 郑建成. CO2激光写入长周期光纤光栅的折变理论及实验研究.  , 2009, 58(9): 6316-6322. doi: 10.7498/aps.58.6316
    [13] 王擎雷, 吴惠桢, 斯剑霄, 徐天宁, 夏明龙, 谢正生, 劳燕锋. Pb1-xMnxSe薄膜的光学特性.  , 2007, 56(8): 4950-4954. doi: 10.7498/aps.56.4950
    [14] 董小伟, 冯素春, 鲁韶华, 许 鸥, 简水生. 两平行长周期光栅耦合器型上下话路滤波器的研究.  , 2007, 56(12): 7039-7045. doi: 10.7498/aps.56.7039
    [15] 梁艳梅, 周大川, 孟凡勇, 王明伟. 一种新型的专用于光学相干层析系统的宽带光纤光源.  , 2007, 56(6): 3246-3250. doi: 10.7498/aps.56.3246
    [16] 韦中超, 戴峭峰, 汪河洲. 毛细管中柱对称类面心结构胶体晶体的光谱特性.  , 2006, 55(2): 733-736. doi: 10.7498/aps.55.733
    [17] 朱 涛, 饶云江, 王若崑, 王久玲. 基于包层旋转折变型光纤光栅的动态增益均衡器.  , 2006, 55(9): 4720-4724. doi: 10.7498/aps.55.4720
    [18] 徐新华, 崔一平. 矩形折射率调制型长周期光纤光栅传输谱的理论分析及数值计算.  , 2003, 52(1): 96-101. doi: 10.7498/aps.52.96
    [19] 张东生, 姜 莉, 张伟刚, 李丽君, 范万德, 袁树忠, 开桂云, 董孝义. 长周期光纤光栅谐振波长与曝光量的变化关系.  , 2003, 52(12): 3087-3091. doi: 10.7498/aps.52.3087
    [20] 王义平, 饶云江, 冉曾令, 朱 涛. 高频CO2激光脉冲写入的长周期光纤光栅传感器的特性研究.  , 2003, 52(6): 1432-1437. doi: 10.7498/aps.52.1432
计量
  • 文章访问数:  10844
  • PDF下载量:  1248
  • 被引次数: 0
出版历程
  • 收稿日期:  2010-01-07
  • 修回日期:  2010-05-17
  • 刊出日期:  2010-06-05

/

返回文章
返回
Baidu
map