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Generation of a CW local oscillator signal using a stabilized injection locked semiconductor laser.

机译:使用稳定的注入锁定半导体激光器生成CW本振信号。

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摘要

In high speed-communications, it is desirable to be able to detect small signals while maintaining a low bit-error rate. Conventional receivers for high-speed fiber optic networks are Amplified Direct Detectors (ADDs) that use erbium-doped fiber amplifiers (EDFAs) before the detector to achieve a suitable sensitivity. In principle, a better method for obtaining the maximum possible signal to noise ratio is through the use of homodyne detection.; The major difficulty in implementing a homodyne detection system is the generation of a suitable local oscillator signal. This local oscillator signal must be at the same frequency as the received data signal, as well as be phase coherent with it. To accomplish this, a variety of synchronization techniques have been explored, including Optical Phase-Lock Loops (OPLL), Optical Injection Locking (OIL) with both Fabry-Perot and DFB lasers, and an Optical Injection Phase-Lock Loop (OIPLL).; For this project I have implemented a method for regenerating a local oscillator from a portion of the received optical signal. This regenerated local oscillator is at the same frequency, and is phase coherent with, the received optical signal. In addition, we show that the injection locking process can be electronically stabilized by using the modulation transfer ratio of the slave laser as a monitor, given either a DFB or Fabry-Perot slave laser. We show that this stabilization technique maintains injection lock (given a locking range of ∼1GHz) for laser drift much greater than what is expected in a typical transmission system. In addition, we explore the quality of the output of the slave laser, and analyze its suitability as a local oscillator signal for a homodyne receiver.
机译:在高速通信中,希望能够在保持低误码率的同时检测小信号。用于高速光纤网络的常规接收器是放大直接检测器(ADD),该检测器在检测器之前使用掺ped光纤放大器(EDFA)来获得合适的灵敏度。原则上,通过使用零差检测来获得最大可能的信噪比的更好方法。实施零差检测系统的主要困难是生成合适的本地振荡器信号。该本地振荡器信号必须与接收到的数据信号具有相同的频率,并且与其相位相干。为实现此目的,已经探索了多种同步技术,包括光学锁相环(OPLL),具有Fabry-Perot和DFB激光器的光学注入锁相(OIL)以及光学注入锁相环(OIPLL)。 ;对于这个项目,我已经实现了一种从一部分接收到的光信号中再生本地振荡器的方法。该再生的本机振荡器处于相同的频率,并且与接收的光信号相位相干。此外,我们证明了在给定DFB或Fabry-Perot从属激光器的情况下,可以通过使用从属激光器的调制传输率作为监视器来稳定注入锁定过程。我们表明,这种稳定技术可保持注入锁定(锁定范围约为1GHz),从而使激光漂移远大于典型传输系统中的预期。此外,我们探索了从激光器输出的质量,并分析了其作为零差接收机本地振荡器信号的适用性。

著录项

  • 作者

    Pezeshki, Jonah Massih.;

  • 作者单位

    University of Maryland, College Park.$bElectrical Engineering.;

  • 授予单位 University of Maryland, College Park.$bElectrical Engineering.;
  • 学科 Engineering Electronics and Electrical.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;光学;
  • 关键词

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