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

光电负反馈下垂直腔表面发射激光器偏振开关特性研究

王小发

引用本文:
Citation:

光电负反馈下垂直腔表面发射激光器偏振开关特性研究

王小发

Polarization switching dynamics of vertical-cavity surface-emitting laser subject to negative optoelectronic feedback

Wang Xiao-Fa
PDF
导出引用
  • 基于扩展的自旋反转模型, 对光电负反馈下垂直腔表面发射激光器的偏振开关特性进行了数值仿真和理论分析. 研究结果表明: 对于不同的自旋反转率, 反馈强度和延迟时间对激光器偏振开关特性产生较大影响.在慢自旋反转率下运行时, 随着反馈强度的增加, 开关点电流呈线性增加, 导致X偏振模被压缩, 这与报道的基于各向同性光反馈的情景相反, 产生这一现象的原因是由于光电负反馈提高了X偏振模的阈值; 延迟时间对开关点电流的影响随反馈强度的变化而不同.在快自旋反转率下运行时, 反馈强度对开关点电流的影响与慢自旋反转率时的情形不同, 开关点电流经历先增加后减小的过程, 开关点电流受反馈强度的影响更加敏感; 而延迟时间的影响规律和慢自旋反转率时相似. 此外, 还发现自发辐射噪声对激光器偏振开关特性有较大影响.
    Using the extended spin-flip model, we theoretically investigate the polarization switching dynamics of a vertical-cavity surface-emitting laser subject to negative optoelectronic feedback. The results show that when the laser operates at two different the spin-flip rates, the feedback intensity and delay time have great influence on polarization switching dynamics. At a slow spin-flip rate, with the increase of feedback intensity, switching current increases linearly, that the X polarization mode is compressed is contrary to the reported results based on isotropic optical feedback. The reason may be due to the fact that the negative optoelectronic feedback improves the X polarization mode threshold; the effect of delay time will vary with feedback intensity. At a fast spin-flip rate, the effect of feedback strength is different from at a slow spin-flip rate, the switching point current undergoes a process in which the current increases first and then decreases gradually, the switching point current is more sensitively dependent on the feedback strength; while effect of the delay time is similar to that at a slow spin-flip rate. In addition, we find that the spontaneous emission noise has a great influence on polarization switching dynamics.
    • 基金项目: 重庆邮电大学博士启动基金(批准号: A2012-24)和重庆邮电大学青年科学基金(批准号: A2012-84)资助的课题.
    • Funds: Project supported by Chongqing University of Posts and Telecommunications Doctoral Fund, China (Grant No. A2012-24) and the Science Foundation for Young Scientists of Chongqing University of Posts and Telecommunications, China (Grant No. A2012-84).
    [1]

    Miguel M S, Feng Q, Moloney J V 1995 Phys. Rev. A 52 1728

    [2]

    Regalado J M, Prati F, Miguel M S, Abraham N B 1997 IEEE J. Quantum Electron. 33 765

    [3]

    Masoller C, Torre M S 2005 IEEE J. Quantum Electron. 41 483

    [4]

    Badilita V, Carlin J F, Ilegems M, Brunner M, Verschaffelt G, Panajotov K 2004 IEEE Photon. Technol. Lett. 16 365

    [5]

    Augustin L M, Smalbrugge E, Choquette K D, Karouta F, Strijbos R C, Verschaffelt G, Geluk E J, van de Roer T G, Thienpont H 2004 IEEE Photon. Technol. Lett. 16 708

    [6]

    Sondermann M, Weinkath M, Ackemann T 2004 IEEE J. Quantum Electron. 40 97

    [7]

    Paul J, Masoller C, Hong Y H, Spencer P S, Shore K A 2007 J. Opt. Soc. Am. B 24 1987

    [8]

    Danckaert J, Peeters M, Mirasso C, Miguel M S, Verschaffelt G, Albert J, Nagler B, Unold H, Michalzik R, Giacomelli G, Marin F 2004 IEEE J. Sel. Top. Quantum Electron. 10 911

    [9]

    Choquette K D, Leibenguth R E 1994 IEEE Photon. Technol. Lett. 6 40

    [10]

    Yoshikawa T, Kawakami T, Saito H, Kosaka H, Kajita M, Kurihara K, Sugimoto Y, Kasahara K 1998 IEEE J. Quantum Electron. 34 1009

    [11]

    Meng P T, Ansas M K, Timothy A S, Kent D C 2012 IEEE Photon. Technol. Lett. 24 745

    [12]

    Russell T H, Milster T D 1997 Appl. Phys. Lett. 70 2520

    [13]

    HongY, Spencer P S, Shore K A 2004 Opt. Lett. 29 2151

    [14]

    Valle A, Pesquera L, Shore K A 1998 IEEE Photon. Technol. Lett. 10 639

    [15]

    Besnard P, Chares M L, Stephan G, Robert F 1999 J. Opt. Soc. Am. B 16 1059

    [16]

    Sciamanna M, Panajotov K, Thienpont H, Veretennicoff I, Megret P, Blondel M 2003 Opt. Lett. 28 1543

    [17]

    Yang B X, Xia G Q, Lin X D, Wu Z M 2009 Acta Phys. Sin. 58 1480 (in Chinese) [杨炳星, 夏光琼, 林晓东, 吴正茂 2009 58 1480]

    [18]

    Jeong K H, Kim K H, Lee S H, Lee M H, Yoo B S, Shore K A 2008 IEEE Photon. Technol. Lett. 20 779

    [19]

    Valle A, Sciamanna M, Panajotov K 2007 Phys. Rev. E 76 046206

    [20]

    Hong Y H, Paul J, Spencer P S, Shore K A 2008 IEEE J. Quantum Electron. 44 30

    [21]

    Wang X F, Xia G Q, Wu Z M 2009 J. Opt. Soc. Am. B 26 160

    [22]

    Zhong W L, Luo B, Li X F, Zuo X H, Wang M Y 2007 Appl. Opt. 46 7262

    [23]

    Wang X F, Xia G Q, Wu Z M 2009 Acta Phys. Sin. 58 4669 (in Chinese) [王小发, 夏光琼, 吴正茂 2009 58 4669]

    [24]

    Cao T, Lin X D, Xia G Q, Chen X H, Wu Z M 2012 Acta Phys. Sin. 61 114203 (in Chinese) [曹体, 林晓东, 夏光琼, 陈兴华, 吴正茂2012 61 114203]

    [25]

    Ignace G, Marc S, Alexandre L, Krassimir P 2007 Opt. Lett. 32 1629

    [26]

    Chen X H, Lin X D, Wu Z M, Fan L, Cao T, Xia G Q 2012 Acta Phys. Sin. 61 094209 (in Chinese) [陈兴华, 林晓东, 吴正茂, 樊丽, 曹体, 夏光琼2012 61 094209]

    [27]

    Zheng A J, Wu Z M, Deng T, Li X J, Xia G Q 2012 Acta Phys. Sin. 61 234203 (in Chinese) [郑安杰, 吴正茂, 邓涛, 李小坚, 夏光琼 2012 61 234203]

    [28]

    Li X J, Wu Z M, Deng T, Zheng A J, Xia G Q 2012 Acta Opt. Sin. 32 1214001(in Chinese) [李小坚, 吴正茂, 邓涛, 郑安杰, 夏光琼 2012光学学报 32 1214001]

    [29]

    Ping X, Wu Z M, Wu J G, Jiang L, Deng T, Tang X, Fan L, Xia G Q 2013 Opt. Commun. 286 339

    [30]

    Xiao Y, Deng T, Wu Z M, Wu J G, Lin X D, Tang X, Zeng L B, Xia G Q 2012 Opt. Commun. 285 1442

  • [1]

    Miguel M S, Feng Q, Moloney J V 1995 Phys. Rev. A 52 1728

    [2]

    Regalado J M, Prati F, Miguel M S, Abraham N B 1997 IEEE J. Quantum Electron. 33 765

    [3]

    Masoller C, Torre M S 2005 IEEE J. Quantum Electron. 41 483

    [4]

    Badilita V, Carlin J F, Ilegems M, Brunner M, Verschaffelt G, Panajotov K 2004 IEEE Photon. Technol. Lett. 16 365

    [5]

    Augustin L M, Smalbrugge E, Choquette K D, Karouta F, Strijbos R C, Verschaffelt G, Geluk E J, van de Roer T G, Thienpont H 2004 IEEE Photon. Technol. Lett. 16 708

    [6]

    Sondermann M, Weinkath M, Ackemann T 2004 IEEE J. Quantum Electron. 40 97

    [7]

    Paul J, Masoller C, Hong Y H, Spencer P S, Shore K A 2007 J. Opt. Soc. Am. B 24 1987

    [8]

    Danckaert J, Peeters M, Mirasso C, Miguel M S, Verschaffelt G, Albert J, Nagler B, Unold H, Michalzik R, Giacomelli G, Marin F 2004 IEEE J. Sel. Top. Quantum Electron. 10 911

    [9]

    Choquette K D, Leibenguth R E 1994 IEEE Photon. Technol. Lett. 6 40

    [10]

    Yoshikawa T, Kawakami T, Saito H, Kosaka H, Kajita M, Kurihara K, Sugimoto Y, Kasahara K 1998 IEEE J. Quantum Electron. 34 1009

    [11]

    Meng P T, Ansas M K, Timothy A S, Kent D C 2012 IEEE Photon. Technol. Lett. 24 745

    [12]

    Russell T H, Milster T D 1997 Appl. Phys. Lett. 70 2520

    [13]

    HongY, Spencer P S, Shore K A 2004 Opt. Lett. 29 2151

    [14]

    Valle A, Pesquera L, Shore K A 1998 IEEE Photon. Technol. Lett. 10 639

    [15]

    Besnard P, Chares M L, Stephan G, Robert F 1999 J. Opt. Soc. Am. B 16 1059

    [16]

    Sciamanna M, Panajotov K, Thienpont H, Veretennicoff I, Megret P, Blondel M 2003 Opt. Lett. 28 1543

    [17]

    Yang B X, Xia G Q, Lin X D, Wu Z M 2009 Acta Phys. Sin. 58 1480 (in Chinese) [杨炳星, 夏光琼, 林晓东, 吴正茂 2009 58 1480]

    [18]

    Jeong K H, Kim K H, Lee S H, Lee M H, Yoo B S, Shore K A 2008 IEEE Photon. Technol. Lett. 20 779

    [19]

    Valle A, Sciamanna M, Panajotov K 2007 Phys. Rev. E 76 046206

    [20]

    Hong Y H, Paul J, Spencer P S, Shore K A 2008 IEEE J. Quantum Electron. 44 30

    [21]

    Wang X F, Xia G Q, Wu Z M 2009 J. Opt. Soc. Am. B 26 160

    [22]

    Zhong W L, Luo B, Li X F, Zuo X H, Wang M Y 2007 Appl. Opt. 46 7262

    [23]

    Wang X F, Xia G Q, Wu Z M 2009 Acta Phys. Sin. 58 4669 (in Chinese) [王小发, 夏光琼, 吴正茂 2009 58 4669]

    [24]

    Cao T, Lin X D, Xia G Q, Chen X H, Wu Z M 2012 Acta Phys. Sin. 61 114203 (in Chinese) [曹体, 林晓东, 夏光琼, 陈兴华, 吴正茂2012 61 114203]

    [25]

    Ignace G, Marc S, Alexandre L, Krassimir P 2007 Opt. Lett. 32 1629

    [26]

    Chen X H, Lin X D, Wu Z M, Fan L, Cao T, Xia G Q 2012 Acta Phys. Sin. 61 094209 (in Chinese) [陈兴华, 林晓东, 吴正茂, 樊丽, 曹体, 夏光琼2012 61 094209]

    [27]

    Zheng A J, Wu Z M, Deng T, Li X J, Xia G Q 2012 Acta Phys. Sin. 61 234203 (in Chinese) [郑安杰, 吴正茂, 邓涛, 李小坚, 夏光琼 2012 61 234203]

    [28]

    Li X J, Wu Z M, Deng T, Zheng A J, Xia G Q 2012 Acta Opt. Sin. 32 1214001(in Chinese) [李小坚, 吴正茂, 邓涛, 郑安杰, 夏光琼 2012光学学报 32 1214001]

    [29]

    Ping X, Wu Z M, Wu J G, Jiang L, Deng T, Tang X, Fan L, Xia G Q 2013 Opt. Commun. 286 339

    [30]

    Xiao Y, Deng T, Wu Z M, Wu J G, Lin X D, Tang X, Zeng L B, Xia G Q 2012 Opt. Commun. 285 1442

  • [1] 王在渊, 王洁浩, 李宇航, 柳强. 面向空间引力波探测的毫赫兹频段低强度噪声单频激光器.  , 2023, 72(5): 054205. doi: 10.7498/aps.72.20222127
    [2] 陈俊, 陈建军, 吴正茂, 蒋波, 夏光琼. 可变偏振光注入下1550nm垂直腔面发射激光器的偏振开关及双稳特性.  , 2016, 65(16): 164204. doi: 10.7498/aps.65.164204
    [3] 孙波, 吴加贵, 王顺天, 吴正茂, 夏光琼. 基于平行偏振光注入的1550nm波段垂直腔表面发射激光器获取窄线宽光子微波的理论和实验研究.  , 2016, 65(1): 014207. doi: 10.7498/aps.65.014207
    [4] 王小发, 吴正茂, 夏光琼. 光反馈诱发长波长垂直腔面发射激光器低功耗偏振开关.  , 2016, 65(2): 024204. doi: 10.7498/aps.65.024204
    [5] 周桢力, 夏光琼, 邓涛, 赵茂戎, 吴正茂. 互注入垂直腔表面发射激光器的多次偏振转换特性研究.  , 2015, 64(2): 024208. doi: 10.7498/aps.64.024208
    [6] 周娅, 吴正茂, 樊利, 孙波, 何洋, 夏光琼. 基于椭圆偏振光注入垂直腔表面发射激光器的正交偏振模式单周期振荡产生两路光子微波.  , 2015, 64(20): 204203. doi: 10.7498/aps.64.204203
    [7] 王小发, 李骏. 短外腔偏振旋转光反馈下1550 nm垂直腔面发射激光器的动力学特性研究.  , 2014, 63(1): 014203. doi: 10.7498/aps.63.014203
    [8] 陈于淋, 吴正茂, 唐曦, 林晓东, 魏月, 夏光琼. 基于双光注入锁定1550 nm垂直腔表面发射半导体激光器产生可调谐毫米波.  , 2013, 62(10): 104207. doi: 10.7498/aps.62.104207
    [9] 郑安杰, 吴正茂, 邓涛, 李小坚, 夏光琼. 偏振保持光反馈下1550 nm垂直腔面发射激光器的非线性动力学特性研究.  , 2012, 61(23): 234203. doi: 10.7498/aps.61.234203
    [10] 钟东洲, 吴正茂. 电光调制对外部光反馈垂直腔表面发射激光器输出矢量混沌偏振的操控.  , 2012, 61(3): 034203. doi: 10.7498/aps.61.034203
    [11] 曹体, 林晓东, 夏光琼, 陈兴华, 吴正茂. 光注入和光电反馈联合作用下垂直腔表面发射激光器的动力学特性研究.  , 2012, 61(11): 114202. doi: 10.7498/aps.61.114202
    [12] 黄雪兵, 夏光琼, 吴正茂. 时变电流注入下光电负反馈垂直腔表面发射激光器的偏振双稳特性.  , 2010, 59(5): 3066-3069. doi: 10.7498/aps.59.3066
    [13] 杨炳星, 夏光琼, 林晓东, 吴正茂. 光脉冲注入下VCSEL的偏振开关特性.  , 2009, 58(3): 1480-1483. doi: 10.7498/aps.58.1480
    [14] 王小发, 夏光琼, 吴正茂. 光电负反馈下单向耦合注入垂直腔表面发射激光器的混沌同步特性研究.  , 2009, 58(7): 4669-4674. doi: 10.7498/aps.58.4669
    [15] 颜森林. 半导体激光器混沌光电延时负反馈控制方法研究.  , 2008, 57(4): 2100-2106. doi: 10.7498/aps.57.2100
    [16] 钟东洲, 曹文华, 吴正茂, 夏光琼. 各向异性光反馈注入的垂直表面发射激光器的矢量偏振模转换机理.  , 2008, 57(3): 1548-1556. doi: 10.7498/aps.57.1548
    [17] 钟东洲, 夏光琼, 王 飞, 吴正茂. 基于光反馈的单向耦合注入垂直腔表面发射激光器的矢量混沌同步特性研究.  , 2007, 56(6): 3279-3291. doi: 10.7498/aps.56.3279
    [18] 廖健飞, 夏光琼, 吴加贵, 许 黎, 吴正茂. 基于光电负反馈的激光混沌串联同步系统研究.  , 2007, 56(11): 6301-6306. doi: 10.7498/aps.56.6301
    [19] 李孝峰, 潘 炜, 马 冬, 罗 斌, 张伟利, 熊 悦. 激光器自发辐射噪声对混沌光通信系统的影响.  , 2006, 55(10): 5094-5104. doi: 10.7498/aps.55.5094
    [20] 黄洪斌. 抽运统计对多级联双光子关联自发辐射激光器噪声的影响(Ⅰ).  , 1995, 44(4): 545-551. doi: 10.7498/aps.44.545
计量
  • 文章访问数:  6699
  • PDF下载量:  602
  • 被引次数: 0
出版历程
  • 收稿日期:  2012-11-16
  • 修回日期:  2012-12-11
  • 刊出日期:  2013-05-05

/

返回文章
返回
Baidu
map