期刊文献+

聚合物光纤中的模式耦合及其对带宽的提高 被引量:8

Mode Coupling in Polymer Optical Fiber and Its Enhancement to Transmission Bandwidth
原文传递
导出
摘要 光在聚合物光纤(POF)中传输时存在较强的模式耦合,由于模式耦合的影响,聚合物光纤的传输带宽得以提高。根据能流方程对阶跃型聚合物光纤光传输中的模式耦合进行了研究,从实验上测量了聚合物光纤的模式耦合系数,测量得到的模式耦合系数为7.61×10-4rad2/m。用测得的模式耦合系数对聚合物光纤中的模式耦合进行数值模拟,得到聚合物光纤的模式耦合长度约为20 m。由模式耦合长度可以得到聚合物光纤的真正带宽,其在150 m传输距离的带宽约为130 Mbit/s。为了验证这一结论,进行了125 Mbit/s.150 m的局域网(LAN)通信实验,通过对发射、接收波形及通信眼图的分析表明,由于模式耦合提高了聚合物光纤的传输带宽,使其可以在150 m的距离上进行百兆速率的通信传输。 There existed strong mode coupling when light traveling in the polymer optical fiber (POF). Due to the mode coupling , the transmission bandwidth of POF was enhanced. The mode coupling of POF was studied based on the power-flow equation. The mode coupling coefficient of POF was measured experimentally, the measured coupling coefficient was 7.61× 10^-4 rad^2/m. The mode coupling process in POF was simulated numerically using measured coupling coefficient; a coupling length of 20 m was obtained. The real bandwidth of POF was revealed from the coupling length. The transmission bandwidth of POF was about 130 Mbit/s over 150 m. To testify the result, a 125 Mbit/s . 150 m local area network (LAN) POF communication experiment was carried out, the transmission waveform and communication eye diagram were analyzed. The experiment results showed that the transmission bandwidth of POF was enhanced by mode coupling, the transmission distance of POF could reach 150 m at data rate 125 Mbit/s.
出处 《中国激光》 EI CAS CSCD 北大核心 2006年第9期1234-1238,共5页 Chinese Journal of Lasers
基金 国家自然科学基金(90201013) 安徽省自然科学基金(03042402)资助项目
关键词 光通信 模式耦合 能流方程 聚合物光纤 optical communication mode coupling power-flow equation polymer optical fiber
  • 相关文献

参考文献3

二级参考文献14

  • 1Raddatz L, White I H, Cunningham D G et al.. An experimental and theoretical study of the offset launch technique for the enhancement of the bandwidth of multimode fiber links. J. Lightwave Technol. , 1998, 16(3) : 324-331.
  • 2Zhang Shuangbing, Zhang Xiaoxi. Er-doped optical fiber amplifier, Patent of China (01244678. 5), 2002.
  • 3Achenbach C P, Cobb J H. Computational studies of light acceptance and propagation in straight and curved multimode active fibres. J. Opt. (A) : Pure and Appl.Opt. , 2003,5(3): 239-249.
  • 4Badar A H, Maclean T S M, Ghafouri-Siraz H et al.. Bent slab ray theory for power distribution in core and cladding of bent multimode optical fibres. IEE Proceedings, Part J:Optoelectronics, 1991, 138(1) : 7-12.
  • 5Gloge D. Bending loss in multimode fibers with graded and ungraded core index. Appl. Opt., 1972, 11(11):2506-2513.
  • 6Hunspergr R G. Integrated Optics : theory and technology, 5th ed., Germany, Heidelberg: Springer,2002. 114-115.
  • 7van den Boom H P A, Li W, van Bennekom P K et al..High-capacity transmission over polymer optical fiber.IEEE J. Selected Topics in Quant. Electron., 2001,7(3): 461-470.
  • 8Yao Li. An overview of NECI projects on thin-cladding POF-based optical interconnects. Proc. SPIE, 1999,3632:70-77.
  • 9Jun Ai, Yao Li. Mixing-rod power coupling for large-core polymer optical fibers. Opt. Engng. , 1999, 38 (6):1024-1028.
  • 10Christopher Emslie. Polymer optical fibres[J] 1988,Journal of Materials Science(7):2281~2293

共引文献10

同被引文献46

引证文献8

二级引证文献14

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