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研究生: 許耀文
Hsu, Yao-Wen
論文名稱: 氧化鋅奈米柱在兆赫波段之導電率和光學常數之探討及其應用
Terahertz conductivites and Optical constant of ZnO nanorods and Their Application
指導教授: 李亞儒
Lee, Ya-Lu
楊承山
Yang, Chan-Shan
學位類別: 碩士
Master
系所名稱: 光電工程研究所
Graduate Institute of Electro-Optical Engineering
論文出版年: 2019
畢業學年度: 107
語文別: 中文
論文頁數: 48
中文關鍵詞: 光電導天線配置的兆赫波時域光譜水熱法氧化鋅奈米柱
英文關鍵詞: terahertz time-domain spectroscopy, photoconductive antenna
DOI URL: http://doi.org/10.6345/NTNU201900993
論文種類: 學術論文
相關次數: 點閱:197下載:0
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本研究利用兆赫波時域光譜來研究氧化鋅奈米柱結構的透射率,進而去計算出不同水熱生長環境製成氧化鋅奈米柱複介電系數、光導率、進而使用德魯德史密斯模型得出氧化鋅材料的遷移率和兆赫波電導率。
本論文使用水熱法成長氧化鋅奈米柱陣列,並使用光電導天線配置的兆赫波時域光譜對材料進行解析。飛秒雷射被分束器分成泵浦光束和探測光束,兩者都透過物鏡聚焦在光電導偶極子天線上,泵浦脈衝激勵光電導天線中的載流子,然後我們使用拋物面鏡來準直兆赫波並聚焦在樣本上,最後利用另一對拋物面鏡收集兆赫的透射率。
最後使用計算軟體求得材料的複介電系數、光導率和遷移率、並且比較不同水熱生長時間下的氧化鋅奈米柱對兆赫波時域光譜的影響。

In this study, we use terahertz time-domain spectroscopy to figure out the transmittance of zinc oxide nanorods structure, and then calculate the complex dielectric coefficient, and use Drude-Smith model in different hydrothermal growth condition. The model derives the mobility of the zinc oxide mobility and the terahertz conductivity.

In this thesis, a hydrothermal method is used to grow a zinc oxide nanopillar array, and the material is analyzed using terahertz time-domain spectrum of a photoconductive antenna configuration. The femtosecond laser is split into a pump beam and a probe beam by a beam splitter, both of which are focused by an objective lens on a photoconductive dipole antenna. The pump pulse excites the carriers in the photoconductive antenna, and then we use a parabolic mirror to the direct megahertz wave is focused on the sample, and finally another pair of parabolic mirrors are used to collect the terahertz transmittance.

Finally, the complex dielectric coefficient, light conductivity and mobility of the material were obtained using the calculation software, and compared the influence of the zinc oxide nanorods in different hydrothermal time on the time-domain spectrum of the terahertz wave.

中文摘要 I ABSTRACT II 致謝 III 目錄 IV 圖目錄 VI 第一章 序論 1 1.1兆赫波技術 1 1.2 奈米材料 2 1.3 氧化鋅材料特性 3 1.4兆赫波測量的動機和目標 4 第二章 實驗設置 6 2.1 氧化鋅奈米柱製備 6 2.2 雷射系統(TSUNAMI,SPITFIRE) 11 2.3 基於光電導天線設置的兆赫波時域光譜 13 第三章 理論模型和分析方法 18 3.1基於光電導天線的兆赫波時域光譜(THZ-TDS) 18 3.2從THZ-TDS中提取材料的光學參數 20 3.3光導率 28 3.4有效介質定理 35 第四章 結果與討論 37 4.1氧化鋅奈米柱材料特性分析 37 第五章 結論 43 第六章 參考文獻 44

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