Chaotic Synchronization of Mutually Coupled Lasers with Another Laser and Its Encoding Application in Secret Communication

被引:0
作者
Senlin Y. [1 ]
机构
[1] Department of Physics and Electronic Engineering, Nanjing XiaoZhuang University, Nanjing
关键词
chaotic synchronization; coding; mutually-coupled laser; semiconductor laser;
D O I
10.1515/joc-2019-0225
中图分类号
学科分类号
摘要
A chaotic synchronization based on mutually coupled different semiconductor lasers and its coding communications are studied. A route to chaos is illustrated by a bifurcate diagram. Chaotic distribution is presented in two lasers. The synchronization equation is given in theory. A chaotic synchronization is obtained between the emitter and the receiver. Other complex dynamical behavior synchronizations are also obtained, such as period-5 and period-10 synchronizations. Cascade synchronizations are achieved. A novel On/Off coding system is presented while its chaotic phase encoding is successfully implemented. Chaos key is also numerically simulated. We find that synchronization can still be achieved when the parameter of the emitter changes at any time so that the newly generated chaotic carrier can ensure mask the information in each communication. Then the real-time variable parameter results in difficulty for eavesdroppers to decipher. Compared with a single laser emitter, this emitter has many secret keys and high security, which is beneficial to its potential application in secret communication. © 2023 Walter de Gruyter GmbH. All rights reserved.
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页码:S673 / S682
页数:9
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共 28 条
  • [1] Jiang N., Zhao A., Xue C., Tang J., Qiu K., Physical secure optical communication based on private chaotic spectral phase encryption/decryption, Opt Lett, 44, pp. 1536-1539, (2019)
  • [2] Ke J., Yi L., Xia G., Hu W., Chaotic optical communications over 100-km fiber transmission at 30-Gb/s bit rate, Opt Lett, 43, pp. 1323-1326, (2018)
  • [3] Erzgrabera H., Lenstraa D., Krauskopfc B., Stability of locking in mutually delay-coupled semiconductor lasers, Proc SPIE, 6184, pp. 618407-618409, (2006)
  • [4] Erzgraber H., Wieczorek S., Locking behavior of three coupled laser oscillators, Phys Rev E, 80, pp. 26212-26216, (2009)
  • [5] Hegarty S.P., Goulding D., Kelleher B., Huyet G., Todaro M.-T., Salhi A., Et al., Phase-locked mutually coupled 1.3µm quantum-dot lasers, Opt Lett, 32, pp. 3245-3247, (2007)
  • [6] Wunsche H.-J., Bauer S., Kreissl J., Ushakov O., Korneyev N., Henneberger F., Et al., Synchronization of delay-coupled oscillators: A study on semiconductor lasers, Phys Rev Lett, 94, (2005)
  • [7] Mulet J., Mirasso C., Heil T., Fischer I., Synchronization scenario of two distant mutually coupled semiconductor lasers, J Opt B: Quantum Semiclass Opt, 6, pp. 97-105, (2004)
  • [8] Hill M.T., de Waardt H., Dorren H.J., All-optical flip-flop based on coupled laser diodes, IEEE J Quantum Electron, 37, pp. 405-413, (2001)
  • [9] Hill M.T., Dorren H.J., de Vries T., Leijtens X.J., den Besten J.H., Smalbrugge B., Et al., A fast low-power optical memory based on coupled micro-ring lasers, Nature, 432, pp. 206-209, (2004)
  • [10] Mohrle M., Sartorius B., Bornholdt C., Bauer S., Brox O., Sigmund A., Et al., Detuned grating multisection-RW-DFB lasers for high speed optical signal processing, IEEE J Select Topics Quantum Electron, 7, pp. 217-223, (2001)