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研究生: 陳子祥
Chen, Tzu-Hsiang
論文名稱: Laser-induced Metal-wire Radiation
雷射誘發金屬線輻射
指導教授: 黃衍介
Huang, Yen-Chieh
口試委員: 楊尚達
陳彥宏
學位類別: 碩士
Master
系所名稱: 電機資訊學院 - 光電工程研究所
Institute of Photonics Technologies
論文出版年: 2011
畢業學年度: 100
語文別: 英文
論文頁數: 47
中文關鍵詞: 短波長輻射天線放大器
外文關鍵詞: S-band radiaiton, antenna, amplifier
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  • Laser-Induced Plasma Radiation with gigahertz frequency could be used as an input energy source for a photocathode RF gun to replace the conventional input process. The resonant frequency of our target photocathode RF gun is 2.856GHz which means, a plasma radiation with a frequency of 2.856GHz has to be used in order to achieve the resonance condition.
    Radiation frequency within the range of 2.3-2.6GHz had been successfully detected with a 1064 nm fundamental wave at pulse duration of 460 picoseconds, and a second harmonic wave (wavelength = 532mn) is generated from the fundamental wave with a LBO at a shorter pulse duration of 330 picoseconds. It is expected that, with a shorter pulse width, higher frequency radiation (hopefully can be near 2.856GHz) in the S-band region could be achieved.
    Due to detection limitation of our ring-antenna, we cannot actually measure such a high frequency of plasma radiation created by a second harmonic wave. But if what we predicted is true, by replicating our current experiment with an enhanced ring-antenna, a kilowatt or even megawatt radiation power with an S-band frequency may be able to achieve and could possibly be recognized as a perfect substitution for the tradition powering method of a photocathode RF gun


    Abstract 2 Acknowledgement 3 Table of Contents 4 List of Tables 5 List of Figures 6 Chapter 1 Introduction 8 1.1 Motivation 8 1.2 Laser-induced Wire Radiation 8 1.3 Overview 9 Chapter 2 Theory and Analysis 10 2.1 Nd:YAG Amplifier 10 2.2 Second Harmonic Generation (SHG) 14 2.3 Laser-induced Wire Radiation 20 Chapter 3 Experimental Result and Discussion 23 3.1 Experiment Setup 23 3.2 Flash lamp Pumped Nd:YAG Amplifier 24 3.3 3.3 Second Harmonic Generation 28 3.4 Laser-induced Wire Radiation 30 Chapter 4 Discussion and Conclusion 36 4.1 Discussion 36 4.2 Conclusion 40 Appendix 41 A. Ring-antenna 41 B. Rectangular Waveguide 43 Reference 46

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