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研究生: 杜晨廷
Tu, Chen-Ting
論文名稱: 超快雷射多尺度複合結構實現氣體檢測應用之研究
Gas Detection Application by Ultrafast Laser Technique with Multiscale Composite Structures
指導教授: 張天立
學位類別: 碩士
Master
系所名稱: 機電工程學系
Department of Mechatronic Engineering
論文出版年: 2019
畢業學年度: 107
語文別: 中文
論文頁數: 101
中文關鍵詞: 超快雷射導電奈米線多尺度複合結構電極結構水熱法氣體感測
英文關鍵詞: Ultrafast laser, Conductive nanowires, Multiscale composite structures, Electrode structures, Hydrothermal method, Gas detection
DOI URL: http://doi.org/10.6345/NTNU201901066
論文種類: 學術論文
相關次數: 點閱:123下載:0
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  • 本研究是利用超快雷射(Ultrafast laser)之超短脈衝(Ultrashort pulses)的特性,進行多尺度複合結構(Multiscale composite structures)元件製作,進而應用於氣體檢測(Gas detection)。由於該雷射製程具較小熱影響區(Heat-affected zone),以能精確進行尺寸的製作。本研究超快雷射製程是在導電石墨烯(Graphene)薄膜基材上,進行圖案化電極(Electrode)結構元件,其結構包括指叉狀元件(Interdigitated electrodes, IDEs)和微溝槽(Microgrooves)。另一方面,為結合導電奈米線於微結構元件,本研究透過水熱法(Hydrothermal)生長氧化鋅(ZnO)奈米線於指叉狀元件上,且在微溝槽生長氧化鋅奈米線,並調控浸泡種晶層溶液時間生長氧化鋅奈米線,將元件電阻從106 下降至約550 。本研究發現在生長溶液中添加甲醇(Methanol)為界面活性劑,將有助於於微結構底部生長氧化鋅奈米線。最後,本研究會於兩種氣體感測元件結構設計,進行不同氣體濃度一氧化氮(Nitric oxide, NO)之檢測探討。本研究結果顯示以指叉狀元件結構氣體感測元件,偵測氣體濃度於50 ppm時,氣體響應值(Response)為6%;氣體濃度於150 ppm時,氣體響應值可為18%;氣體濃度於300 ppm時,氣體響應值可為31%。以微溝槽作為氣體感測元件時,偵測氣體濃度於50 ppm時,氣體響應值為11%;氣體濃度於150 ppm時,氣體響應值為22%;氣體濃度於300 ppm時,氣體響應值為40%。

    In this study, the ultrashort pulse laser with characteristics of ultrashort pulses were used to fabricate multiscale composite structures and then can be applied to gas detection. Due to the process with the small heat-affected zone, it can be precisely ablated the structure size. The ultrafast laser process of this study was to perform patterned electrode device on the conductive graphene substrate, in which the structures include interdigitated electrodes (IDEs) and micro grooves. The gas sensor device was fabricated with growth of ZnO nanowires by hydrothermal method on IDEs. The resistances of ZnO nanowires growth in microgrooves have changed at with different immersing time in seed layer solution. The resistance decreased from 106  to 550 . After adding methanol as a surfactant solution in the growth solution, the ZnO nanowires can be grown at the bottom of the microgroove structures. Finally, two gas sensing devices with the different sensing structures were designed to detect Nitric oxide (NO) at different concentrations. The results demonstrated that the gas sensing response were 6% and 18% when the concentration of NO were 50 ppm and 150 ppm with gas sensing device of IDEs structure. When the concentration of NO was 300 ppm, the gas sensing response can be increased to 31%. The gas sensing response were 11% and 22% when the concentration of NO were 50 ppm and 150 ppm with the gas sensing devices of microgroove structures. The gas sensing response was 40% when the concentration of NO was 300 ppm.

    摘要 i Abstract ii 致謝 iii 圖目錄 vi 表目錄 xi 第一章 緒論 1 1.1 研究背景與目的 1 1-2 氣體檢測 2 1.3 雷射製程簡介 3 1.4 奈米材料介紹 4 1.4.1 奈米線製程介紹 4 1-5 導電材料 5 第二章 文獻回顧 11 2.1 超快雷射加工簡介 11 2.2 超快雷射製程回顧 11 2.3 微型加熱元件回顧 12 2.4 導電奈米線回顧 13 2.4.1 水熱法製作金屬氧化物奈米線 14 2.4.2水熱法製作氧化鋅奈米線於微結構 14 2.5氣體偵測元件回顧 16 2.5.1 金屬氧化物於氣體偵測 16 2.5.2 複合式材料於氣體偵測 17 第三章 研究方法與設計 36 3.1 研究目的 36 3.2 導電薄膜製作 37 3.3 元件感測電極設計 37 3.4 雷射製程製造 38 3.4.1 雷射加工剝離閥值 38 3.4.2 雷射加工之重疊率與脈衝數 39 3.5 加熱元件設計 40 3.6 導電奈米線製作 41 3.6.1 水熱法 41 3.7 氣體感測晶片檢測分析 42 3.8 實驗量測與設備 43 第四章 結果與討論 54 4.1 石墨烯薄膜分析 54 4.1.1 製作石墨烯導電薄膜 54 4.1.2石墨烯薄膜表面分析及特性分析 55 4.2 超快雷射於導電薄膜圖案化之結果 55 4.2.1雷射加工剝離閥值 56 4.2.2電極設計與製作 58 4.3 電壓與溫度關係於加熱器探討 59 4.4 水熱法製作奈米線 59 4.4.1水熱法製作氧化鋅奈米線表面形貌 60 4.4.2 氧化鋅奈米線生長於指叉狀結構 60 4.4.3 氧化鋅奈米線生長於微型溝槽之結構 61 4.4.4 水熱法對生長溶液探討 62 4.5 電性與氣體反應檢測分析氣體 63 4.5.1 於氣體之電性與阻抗檢測分析 64 第五章 結論 90 5.1 結論 90 5.2 建議與未來展望 92 參考文獻 93

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