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Optical arbitrary waveform generation and measurement.

机译:光学任意波形的产生和测量。

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摘要

A technology for accurate generation and characterization of arbitrary optical waveforms scaling to terahertz bandwidth can fundamentally transform modern applications including optical spectroscopy, communications, imaging, and many others. Generation of terahertz bandwidth optical waveforms is challenging because direct electrical-to-optical modulation schemes have bandwidths below 100 GHz due to limitations in current electronic technologies. Similarly, continuous, real-time amplitude and phase characterization of optical waveforms is currently limited to tens of gigahertz. Novel methods which take advantage of frequency multiplexing or temporal multiplexing techniques are necessary to extend the generation and measurement bandwidths.;This dissertation focuses on bandwidth-scalable optical arbitrary waveform generation based on a frequency-multiplexed technique using optical frequency combs. Three components are necessary for waveform generation: an optical frequency comb which provides a set of evenly and precisely spaced optical frequencies spanning several terahertz, an optical multiplexer and demultiplexer pair to isolate and combine individual spectral lines, and an array of modulators. Frequency parallel modulation on each comb line broadens the spectrum of each line to fill the spectral gaps between the lines. Defining the signals applied to each modulator enables synthesis of a continuous and fully specified optical spectrum spanning the entire frequency comb's bandwidth. Full control over the spectrum allows complete specification of the temporal domain waveform via the Fourier transform.;Optical arbitrary waveform measurement is a symmetric technique where the signal spectrum is demultiplexed into spectral slices and then each spectral slice is coherently detected with respect to a reference comb line. This dissertation introduces a theory for, and shows demonstrations of, the generation and measurement of optical arbitrary waveforms that are scalable to terahertz bandwidths.;Results include high-fidelity generation and measurement of arbitrary shaped optical frequency combs with 10, 20, and 40 GHz comb line spacing using integrated waveform shapers. Single-shot waveform measurements show near quantum-limited characterization across a 200-ps wide optical window with 500 GHz bandwidth. Additionally, an integrated real-time implementation of optical arbitrary waveform measurement demonstrates continuous characterization of 160 GHz bandwidth optical waveforms with a 2 s duration. Terahertz-bandwidth, continuous arbitrary optical waveform generation and measurement provide a unique functionality, which will fundamentally impact many fields of science.
机译:精确生成和表征缩放到太赫兹带宽的任意光波形的技术可以从根本上改变现代应用,包括光谱,通信,成像等。太赫兹带宽光波形的产生具有挑战性,因为由于当前电子技术的限制,直接的电光调制方案的带宽低于100 GHz。类似地,光学波形的连续,实时幅度和相位表征目前仅限于数十千兆赫兹。必须利用频分复用或时分复用技术来扩展生成和测量带宽的新方法。本文主要研究基于基于光频梳的频分复用技术的带宽可扩展的光任意波形生成。波形生成需要三个组件:一个光学频率梳,它提供一组跨越几个太赫兹的均匀且精确间隔的光学频率;一个光学多路复用器和多路分解器对,用于隔离和组合各个频谱线;以及一个调制器阵列。每条梳状线上的频率并行调制加宽了每条线的频谱,以填充两行之间的频谱间隙。定义施加到每个调制器的信号,可以合成跨越整个频率梳的带宽的连续且完全指定的光谱。对频谱的完全控制允许通过傅立叶变换来完整指定时域波形。光学任意波形测量是一种对称技术,其中信号频谱被多路分解为频谱切片,然后相对于参考梳齿相干地检测每个频谱切片线。本文介绍了可扩展至太赫兹带宽的光学任意波形的产生和测量的理论,并进行了演示;结果包括高保真度产生和测量10、20和40 GHz的任意形状的光学频率梳使用集成的波形整形器来梳理线间距。单次波形测量结果显示,在200 ps宽,500 GHz带宽的光学窗口中,接近量子限制的表征。此外,光学任意波形测量的集成实时实现演示了持续时间为2 s的160 GHz带宽光学波形的连续表征。太赫兹带宽,连续任意光波形的生成和测量提供了独特的功能,将从根本上影响许多科学领域。

著录项

  • 作者

    Fontaine, Nicolas Keith.;

  • 作者单位

    University of California, Davis.;

  • 授予单位 University of California, Davis.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 246 p.
  • 总页数 246
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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