期刊文献+

Time delay signature concealment of chaotic semiconductor laser subject to nonlinear feedback

Time delay signature concealment of chaotic semiconductor laser subject to nonlinear feedback
原文传递
导出
摘要 An external-cavity semiconductor laser with nonlinear optical feedback to generate broadband chaos with time delay signature(TDS) suppression is investigated. The system is composed of three semiconductor lasers, one of which is regarded as the chaos generator, while the other two play a role of a built-in nonlinear modulator in the external cavity of the generator. The results show that by properly setting the feedback strength and time delay of the first semiconductor laser in the nonlinear modulator, the TDS embedded in the intensity and phase time-series of the chaos can be effectively concealed in a wide range of frequency detuning. An external-cavity semiconductor laser with nonlinear optical feedback to generate broadband chaos with time delay signature(TDS) suppression is investigated. The system is composed of three semiconductor lasers, one of which is regarded as the chaos generator, while the other two play a role of a built-in nonlinear modulator in the external cavity of the generator. The results show that by properly setting the feedback strength and time delay of the first semiconductor laser in the nonlinear modulator, the TDS embedded in the intensity and phase time-series of the chaos can be effectively concealed in a wide range of frequency detuning.
出处 《Chinese Optics Letters》 SCIE EI CAS CSCD 2016年第9期53-57,共5页 中国光学快报(英文版)
基金 supported in part by the National Science Foundation of China(NSFC)(Nos.61301156and 61471087) the Specialized Research Fund for the Doctoral Program of Higher Education of China(No.20130185120007) the Fundamental Research Funds for the Central Universities(No.ZYGX2013J001)
关键词 Nonlinear optics Semiconductor lasers Time delay Nonlinear optics Semiconductor lasers Time delay
  • 相关文献

参考文献29

  • 1T. Matsuura, A. Uchida, and S. Yoshimori. Opt. Lett. 29. 2731 (2004).
  • 2A. Argyris, D. Syvridis, L. Larger, V. Annovazzi-Lodi. P. Colet. I. Fischer. d. Garcla-Ojalvo, C. R. Mirasso, L. Pesquera. mid K. A. Shore, Nature 438, 343 (2005).
  • 3Y. Hong, M. W. Lee, J. Paul, P. S. Spencer, and K. A. Shore, IEEE ,l. Lightwave Teehnol. 27. 5099 (2009).
  • 4N. Jiang, C. Zhang, and K. Qiu, Opt. Lett. 37.4501 (2012).
  • 5A. Uchida, K. Amano, M. Inoue, K. Hirano, S. Naito. H. Someya. i. Oowada, T. Kurashige, M. Shiki, S. Yoshimori, K. Yoshinmra, and P. Davis, Nat. Photon. 2, 728 (2008).
  • 6I. Kanter, Y. Aviad, I. Reidler, E. Cohen, and M. I/osenbluh. Nat. Photon. 4, 58 (2010).
  • 7A. Wang, P. Li, J. Zhang, J. Zhang, L. Li, and Y. Wang, Opt. Express 21, 20452 (2014).
  • 8R. Sakuraba, K. Iwakawa, K. Kanno, and A. Uchida. Opt. Express 23, 1470 (2015).
  • 9F. Y. Lin and J. M. Liu, IEEE J. Quantum Electron. 40, 682 (2004).
  • 10W. T. Wu, Y. H. Liao, and F. Y. Lin, Opt. Express 18, 26155 (2010).

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部