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A comprehensive view of temporal domain interference and spectral interpretation of short pulse.

机译:时域干扰和短脉冲的频谱解释的全面视图。

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摘要

The superposition of the number of waves in time-domain Fourier synthesis is a basis of the Fourier transform. The beat or modulation frequency component of the resultant undulation of superposed EM waves has been easily detected by a broadband solid-state material detector. On the contrary, neither a beat or modulation frequency or even an average frequency could be detected by a Fabry-Perot interferometer which is a popularly used device as a spectrometer to analyze different frequency components with high resolving power. In this dissertation, by revisiting the property of the superposition effect of electromagnetic fields, we can improve our understanding of the properties of light beams with an investigation of the condition for the Fourier synthesis. Through this research, the necessity of the atomic or other material detector is suggested.; Fourier analysis, which is the inverse process of Fourier synthesis, is discussed to analyze the frequency components of a time limited pulse. It has been known that those are linked by the Fourier transform. The explanation of the time-domain superposition effect of light beams through interferometric devices gives a direct interpretation of an impulse response function. The difference of the impulse response function in a continuous wave case and a time limited pulse case is easily ignored. Due to the spatial and temporal locality of interference, Spatio-Temporal Response (STR) function is suggested using the spatial and temporal domain limitation for the superposition of the time limited pulse through interferometer. Using this STR function, the fringe broadening effect due to changes in the temporal input pulse width is discussed with the analysis of the frequency components in the broadened fringe. Based on the understanding of the temporal superposition effect of the EM fields, Fourier theory is explained by an understanding of the Fourier synthesis and the Fourier analysis. These works can be broadly applied in fiber communication systems to overcome the limitations to the high data transfer rate.; Analysis of cavity ring-down spectroscopy (CRDS) is given by the time-domain interpretation using the STR function. The time domain analysis gives a more direct and heuristic method than the frequency domain interpretation.
机译:时域傅立叶合成中波数的叠加是傅立叶变换的基础。宽带固态材料检测器很容易检测到叠加的EM波所产生的波动的拍频或调制频率分量。相反,法布里-珀罗干涉仪无法检测到拍频或调制频率,甚至无法检测到平均频率,法布里-珀罗干涉仪是一种常用的光谱仪,可以分析具有高分辨力的不同频率分量。本文通过考察电磁场叠加效应的性质,通过研究傅立叶合成的条件,可以提高对光束性质的认识。通过这项研究,提出了原子或其他材料探测器的必要性。讨论了傅里叶分析,它是傅里叶合成的逆过程,用于分析限时脉冲的频率分量。已知通过傅立叶变换将它们链接在一起。通过干涉仪对光束的时域叠加效应的解释给出了脉冲响应函数的直接解释。连续波情况和限时脉冲情况下脉冲响应函数的差异很容易被忽略。由于干扰的时空局部性,建议使用时空域限制通过干涉仪叠加限时脉冲,以实现时空响应(STR)功能。使用此STR函数,通过分析加宽条纹中的频率分量,讨论了由于时间输入脉冲宽度变化而引起的条纹加宽效果。基于对电磁场的时间叠加效应的理解,通过对傅立叶综合和傅立叶分析的理解来解释傅立叶理论。这些工作可以广泛地应用于光纤通信系统中,以克服对高数据传输速率的限制。腔衰荡光谱分析(CRDS)通过使用STR函数的时域解释给出。时域分析提供了比频域解释更直接和启发式的方法。

著录项

  • 作者

    Lee, Dong-Ik.;

  • 作者单位

    University of Connecticut.;

  • 授予单位 University of Connecticut.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 192 p.
  • 总页数 192
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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