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Low noise, high repetition rate semiconductor-based mode-locked lasers for signal processing and coherent communications.

机译:低噪声,高重复频率的基于半导体的锁模激光器,用于信号处理和相干通信。

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摘要

This dissertation details work on high repetition rate semiconductor mode-locked lasers. The qualities of stable pulse trains and stable optical frequency content are the focus of the work performed. First, applications of such lasers are reviewed with particular attention to applications only realizable with laser performance such as presented in this dissertation. Sources of timing jitter are also reviewed, as are techniques by which the timing jitter of a 10 GHz optical pulse train may be measured. Experimental results begin with an exploration of the consequences on the timing and amplitude jitter of the phase noise of an RF source used for mode-locking. These results lead to an ultralow timing jitter source, with 30 fs of timing jitter (1 Hz to 5 GHz, extrapolated). The focus of the work then shifts to generating a stabilized optical frequency comb. The first technique to generating the frequency comb is through optical injection. It is shown that not only can injection locking stabilize a mode-locked laser to the injection seed, but linewidth narrowing, timing jitter reduction and suppression of superfluous optical supermodes of a harmonically mode-locked laser also result. A scheme by which optical injection locking can be maintained long term is also proposed. Results on using an intracavity etalon for supermode suppression and optical frequency stabilization then follow. An etalon-based actively mode-locked laser is shown to have a timing jitter of only 20 fs (1Hz--5 GHz, extrapolated), optical linewidths below 10 kHz and optical frequency instabilities less than 400 kHz. By adding dispersion compensating fiber, the optical spectrum was broadened to 2 THz and 800 fs duration pulses were obtained.;By using the etalon-based actively mode-locked laser as a basis, a completely self-contained frequency stabilized coupled optoelectronic oscillator was built and characterized. By simultaneously stabilizing the optical frequencies and the pulse repetition rate to the etalon, a 10 GHz comb source centered at 1550 nm was realized. This system maintains the high quality performance of the actively mode-locked laser while significantly reducing the size weight and power consumption of the system. This system also has the potential for outperforming the actively mode-locked laser by increasing the finesse and stability of the intracavity etalon.;The final chapter of this dissertation outlines the future work on the etalon-based coupled optoelectronic oscillator, including the incorporation of a higher finesse, more stable etalon and active phase noise suppression of the RF signal. Two appendices give details on phase noise measurements that incorporate carrier suppression and the noise model for the coupled optoelectronic oscillator.
机译:本文详细介绍了高重复频率半导体锁模激光器的工作。稳定的脉冲序列的质量和稳定的光学频率含量是执行工作的重点。首先,对这种激光器的应用进行了回顾,特别注意了仅能通过激光性能实现的应用,如本论文所述。还回顾了时序抖动的来源,以及可以用来测量10 GHz光脉冲序列的时序抖动的技术。实验结果首先探讨了用于锁模的RF源对相位噪声的时序和幅度抖动的影响。这些结果导致了超低的时序抖动源,具有30 fs的时序抖动(1 Hz至5 GHz,外推)。然后,工作重点转移到生成稳定的光学频率梳。产生频率梳的第一种技术是通过光学注入。结果表明,注入锁定不仅可以将锁模激光器稳定在注入种子上,而且还可以缩小线宽,减小定时抖动并抑制谐波锁模激光器的多余光学超模。还提出了可以长期保持光学注入锁定的方案。然后使用腔内标准具进行超模抑制和光学频率稳定的结果如下。基于标准具的有源锁模激光器的时序抖动仅为20 fs(1Hz--5 GHz,外推),光线宽低于10 kHz,光频率不稳定性低于400 kHz。通过添加色散补偿光纤,将光谱展宽至2 THz,获得800 fs的持续时间脉冲。;以标准具为基础的有源锁模激光器为基础,构建了一个完全自包含的频率稳定耦合光电振荡器。和特点。通过同时稳定标准具的光频率和脉冲重复频率,实现了以1550 nm为中心的10 GHz梳状光源。该系统在保持主动锁模激光器的高质量性能的同时,大大降低了系统的尺寸重量和功耗。该系统还具有通过提高腔内标准具的精细度和稳定性来胜过主动锁模激光器的潜力。本论文的最后一章概述了基于标准具的耦合光电振荡器的未来工作,包括结合使用更高的精细度,更稳定的标准具和射频信号的有源相位噪声抑制。两个附录详细介绍了相位噪声测量,其中包括载波抑制和耦合光电振荡器的噪声模型。

著录项

  • 作者

    Quinlan, Franklyn John.;

  • 作者单位

    University of Central Florida.;

  • 授予单位 University of Central Florida.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 150 p.
  • 总页数 150
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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