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Ultra-fast optical signal processing for digital communications using all-optical nonlinear interaction in semiconductor optical waveguides.

机译:使用半导体光波导中的全光非线性相互作用进行数字通信的超快速光信号处理。

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摘要

In optical communications, clock recovery, optical time demultiplexing, and 3R regeneration are known as optical signal processing. Ultra-fast optical signal processing techniques are mandatory in future high-speed network and transmission systems to allow effective use of the large optical fiber bandwidth and the light speed capabilities.; One solution is all-optical signal processing that avoids the bottleneck of slow electronics. All-optical modulation can be achieved through nonlinearties in semiconductor waveguides like EAM or SOA. Those waveguides have fast and strong nonlinearties that are appropriate for ultra-fast processing. In addition, semiconductors require reasonable optical power to operate and they can be integrated with other semiconductor devices.; In this work, we demonstrated a several new techniques for optical signal processing, such as ultrafast optical clock recovery. We use the fast and nonlinear timedependent loss/gain saturation in EAM/SOA to perform all-optical timing extraction. This in turn is used for optical clock recovery from data rates up to 160 Gbit/s. Simulation results shows that the technique has a potential to recover optical clock up to 640 Gbit/s.; Also we demonstrated all-optical logic AND gate using nonlinear transmission of EAM. The gate shows successful operation at 10 Gbit/s with a 231-1 PRBS data and it has potential for higher speeds.; We also demonstrated optical time division demultiplexing from 40 Gbit/s with simultaneous clock recovery using cross-absorption saturation inside a single EAM. The system shows an error free operation using a 231 -1 PRBS. Also, it shows successful operation with burst-mode data propagating in a fiber-optic recirculating loop up to a distance of 10,000 Km.; The optical 3R regeneration is also demonstrated at 10 Gbit/s using a single EAM. The all-optical timing extraction inside EAM is used for retiming, while the nonlinear transmission of EAM is used for reshaping. Meanwhile, wavelength conversion and re-amplification are performed at the same time.; FWM is well known by its ultrafast operation and has been widely investigated by other groups in SOA's and optical fibers. Here, we showed that FWM in EAM has unique characteristics, like wide detuning range and enhancement of conversion efficiency with reverse bias. Also, we demonstrated FWM demultiplexing from 80 Gbit/s with simultaneous clock recovery using co-propagation inside a single EAM.
机译:在光通信中,时钟恢复,光时间多路分解和3R再生被称为光信号处理。超高速光信号处理技术在未来的高速网络和传输系统中是强制性的,以允许有效地利用大的光纤带宽和光速能力。一种解决方案是全光信号处理,可以避免电子设备速度缓慢的瓶颈。可以通过EAM或SOA等半导体波导中的非线性来实现全光调制。这些波导具有适用于超快速处理的快速而强的非线性。另外,半导体需要合理的光功率才能工作,并且可以与其他半导体器件集成在一起。在这项工作中,我们展示了几种用于光信号处理的新技术,例如超快光时钟恢复。我们在EAM / SOA中使用快速且非线性的时间相关损耗/增益饱和来执行全光时序提取。依次将其用于从高达160 Gbit / s的数据速率恢复光时钟。仿真结果表明,该技术具有恢复高达640 Gbit / s的光时钟的潜力。我们还演示了使用EAM的非线性传输的全光逻辑AND门。门显示出以2 31 -1 PRBS数据以10 Gbit / s的速率成功运行,并且具有更高的速度潜力。我们还演示了在单个EAM中使用交叉吸收饱和从40 Gbit / s进行光时分多路分解并同时进行时钟恢复。系统显示使用2 31 -1 PRBS的无错误操作。此外,它还显示了成功运行的突发模式数据在光纤循环回路中传播的最大距离为10,000 Km。还使用单个EAM以10 Gbit / s的速度演示了光学3R再生。 EAM内部的全光定时提取用于重定时,而EAM的非线性传输用于重塑。同时,波长转换和再放大同时进行。 FWM以其超快的操作而闻名,并已被SOA和光纤中的其他组织广泛研究。在这里,我们证明了EAM中的FWM具有独特的特性,例如宽的失谐范围以及通过反向偏置提高转换效率。此外,我们还演示了在单个EAM中使用共传播从80 Gbit / s进行FWM多路分解并同时进行时钟恢复。

著录项

  • 作者

    Awad, Ehab.;

  • 作者单位

    University of Maryland College Park.;

  • 授予单位 University of Maryland College Park.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 160 p.
  • 总页数 160
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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