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  1. NTU Theses and Dissertations Repository
  2. 工學院
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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/100122
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor徐振哲zh_TW
dc.contributor.advisorCheng-Che Hsuen
dc.contributor.author林泓翰zh_TW
dc.contributor.authorHong-Han Linen
dc.date.accessioned2025-09-24T16:34:04Z-
dc.date.available2025-09-25-
dc.date.copyright2025-09-24-
dc.date.issued2025-
dc.date.submitted2025-08-11-
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39. I. Radu, R. Bartnikas, and M. R. Wertheimer, "Dielectric barrier discharges in atmospheric pressure helium in cylinder-plane geometry: experiments and model," Journal of Physics D-Applied Physics, 37 (3), 449-462 (2004).
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41. Z. Navrátil, R. Brandenburg, D. Trunec, A. Brablec, P. St'ahel, H. E. Wagner, and Z. Kopecky, "Comparative study of diffuse barrier discharges in neon and helium," Plasma Sources Science & Technology, 15 (1), 8-17 (2006).
42. N. Brenning, I. Axnas, J. O. Nilsson, and J. E. Eninger, "High-pressure pulsed avalanche discharges: Formulas for required preionization density and rate for homogeneity," Ieee Transactions on Plasma Science, 25 (1), 83-88 (1997).
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45. S. A. Starostin, P. A. Premkumar, M. Creatore, H. de Vries, R. M. J. Paffen, and M. C. M. van de Sanden, "High current diffuse dielectric barrier discharge in atmospheric pressure air for the deposition of thin silica-like films," Applied Physics Letters, 96 (6)(2010).
46. Z. Fang, J. G. Lin, H. Yang, Y. C. Qiu, and E. Kuffel, "Polyethylene Terephthalate Surface Modification by Filamentary and Homogeneous Dielectric Barrier Discharges in Air," Ieee Transactions on Plasma Science, 37 (5), 659-667 (2009).
47. C. Bajon, S. Dap, A. Belinger, O. Guaitella, T. Hoder, and N. Naude, "Homogeneous dielectric barrier discharge in CO2," Plasma Sources Science & Technology, 32 (4)(2023).
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97. W. Li, C. B. Zheng, G. Y. Fan, L. Tang, K. L. Xu, Y. Lv, and X. D. Hou, "Dielectric Barrier Discharge Molecular Emission Spectrometer as Multichannel GC Detector for Halohydrocarbons," Analytical Chemistry, 83 (13), 5050-5055 (2011).
98. R. L. V. Wal, J. H. Fujiyama-Novak, C. K. Gaddam, D. Das, A. Hariharan, and B. Ward, "Atmospheric Microplasma Jet: Spectroscopic Database Development and Analytical Results," Applied Spectroscopy, 65 (9), 1073-1082 (2011).
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101. Y. F. Tian, P. Wu, X. Wu, X. M. Jiang, K. L. Xu, and X. D. Hou, "Corona discharge radical emission spectroscopy: a multi-channel detector with nose-type function for discrimination analysis," Analyst, 138 (8), 2249-2253 (2013).
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103. B. J. Han, X. M. Jiang, X. D. Hou, and C. B. Zheng, "Dielectric Barrier Discharge Carbon Atomic Emission Spectrometer: Universal GC Detector for Volatile Carbon-Containing Compounds," Analytical Chemistry, 86 (1), 936-942 (2014).
104. D. B. Luo, Y. X. Duan, Y. He, and B. Gao, "A Novel DC Microplasma Sensor Constructed in a Cavity PDMS Chamber with Needle Electrodes for Fast Detection of Methanol-containing Spirit," Scientific Reports, 4(2014).
105. F. Y. Meng, X. M. Li, and Y. X. Duan, "Chip-based ingroove microplasma with orthogonal signal collection: new approach for carbon-containing species detection through open air reaction for performance enhancement," Scientific Reports, 4(2014).
106. R. L. Vander Wal, C. K. Gaddam, and M. J. Kulis, "An Investigation of Micro-Hollow Cathode Glow Discharge Generated Optical Emission Spectroscopy for Hydrocarbon Detection and Differentiation," Applied Spectroscopy, 68 (6), 649-656 (2014).
107. B. Wang, W. Q. Cao, and Y. X. Duan, "Selective detection of organophosphate nerve agents using microplasma device," Analytical Methods, 6 (6), 1848-1854 (2014).
108. X. Jiang, C. H. Li, Z. Long, and X. D. Hou, "Selectively enhanced molecular emission spectra of benzene, toluene and xylene with nano-MnO2 in atmospheric ambient temperature dielectric barrier discharge," Analytical Methods, 7 (2), 400-404 (2015).
109. C. H. Li, X. Jiang, and X. D. Hou, "Dielectric barrier discharge molecular emission spectrometer as gas chromatographic detector for amines," Microchemical Journal, 119, 108-113 (2015).
110. F. Y. Meng, and Y. X. Duan, "Nitrogen Microplasma Generated in Chip-Based Ingroove Glow Discharge Device for Detection of Organic Fragments by Optical Emission Spectrometry," Analytical Chemistry, 87 (3), 1882-1888 (2015).
111. H. B. Zhu, M. L. Zhou, J. Lee, R. Nidetz, K. Kurabayashi, and X. D. Fan, "Low-Power Miniaturized Helium Dielectric Barrier Discharge Photoionization Detectors for Highly Sensitive Vapor Detection," Analytical Chemistry, 88 (17), 8780-8786 (2016).
112. X. Jiang, Z. M. Hu, H. W. He, J. Luo, Y. F. Tian, and X. D. Hou, "A two-dimensional sensor based on dielectric barrier discharge molecular optical emission and chemiluminescence for discrimination analysis of volatile halohydrocarbons," Microchemical Journal, 129, 16-22 (2016).
113. T. Yang, D. X. Gao, Y. L. Yu, M. L. Chen, and J. H. Wang, "Dielectric barrier discharge micro-plasma emission spectrometry for the detection of acetone in exhaled breath," Talanta, 146, 603-608 (2016).
114. D. B. Luo, D. C. Ma, Y. He, X. S. Li, S. Wang, and Y. X. Duan, "Needle electrode-based microplasma formed in a cavity chamber for optical emission spectrometric detection of volatile organic compounds through a filter paper sampling," Microchemical Journal, 130, 33-39 (2017).
115. M. T. Li, S. X. Huang, K. L. Xu, X. M. Jiang, and X. D. Hou, "Miniaturized point discharge-radical optical emission spectrometer: A multichannel optical detector for discriminant analysis of volatile organic sulfur compounds," Talanta, 188, 378-384 (2018).
116. B. Qian, J. Zhao, Y. He, L. X. Peng, H. L. Ge, and B. J. Han, "Miniaturized dielectric barrier discharge-molecular emission spectrometer for determination of total sulfur dioxide in food," Food Chemistry, 317(2020).
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/100122-
dc.description.abstract電漿被視為物質的第四態,當對氣體分子施加高能量使其電子發生躍遷後,電子由高能階返回低能階的過程中常伴隨光子的釋放。由於不同氣體分子具備不同的化學結構與鍵結特性,其所釋放之光譜亦呈現特定差異,因此電漿發射光譜可作為辨識與分析有機物的重要工具。微電漿(microplasma)係指放電區尺度小於數毫米的電漿形式,具有低成本、低功耗、高反應性及易於攜帶等優點,本研究旨在建立一套可攜式之常壓微電漿系統,應用於揮發性有機化合物(Volatile Organic Compounds, VOCs)之偵測。為達此目的,本研究設計並開發一組具備藍芽遠端控制功能與可調整操作頻率之高壓電源模組。
本研究所設計之藍芽遙控高壓模組以智慧型手機作為訊號產生端,透過應用程式設定輸出訊號之正弦波頻率與振幅,並以藍芽傳輸至高壓模組內之藍芽接收晶片。接收訊號經由 LM386 功率放大器進行波形修飾與放大後,作為控制BJT開關之驅動訊號。系統以行動電源提供直流電源,藉由BJT開關製造電流變化,透過變壓器將電壓升至數千伏用於點起電漿。
本研究結合介電阻擋放電(Dielectric Barrier Discharge, DBD)與藍芽遙控高壓模組,在氬氣環境中產生電漿以進行有機物偵測。所採用之 DBD 結構為銅電極–介電層–銅電極,介電層材質為玻璃纖維(Glass Fiber),其基材為含碳之環氧樹脂(Epoxy Resin)。透過碳粉熱轉印之濕式蝕刻法於銅電極表面進行電極設計。
實驗中發現,在純氬氣環境下放電時,介電層會產生CH與C₂等特徵有機發射峰,顯示介電層存在燒蝕現象,且其強度隨放電時間增加而增強。為降低燒蝕程度,本研究透過調整電極幾何形狀進行優化,並以電性參數與光譜特徵作為評估依據。最終確認當高壓電極為三角形(0.3 × 0.2 cm,74⁰)、浮動電極為正三角形(0.26 × 0.23 cm,59⁰)、背電極寬度為 0.5 cm 時,燒蝕現象最為輕微。此外,此電極設計在固定乙醇濃度下進行多次重複放電時,不僅同一片 DBD間放電強度離散度最低,不同批次間之重複性亦表現最佳。
zh_TW
dc.description.abstractPlasma is regarded as the fourth state of matter. When high energy is applied to gas molecules, causing electronic excitation, the transition of electrons from higher to lower energy levels is often accompanied by the emission of photons. Due to the distinct chemical structures and bonding characteristics of different gas molecules, the resulting emission spectra exhibit unique features. As such, plasma emission spectroscopy serves as a powerful tool for the identification and analysis of organic compounds.
Microplasma refers to a form of plasma with a discharge region on the sub-millimeter to millimeter scale. It offers advantages such as low cost, low power consumption, high reactivity, and portability. The objective of this study is to develop a portable atmospheric-pressure microplasma system for the detection of volatile organic compounds (VOCs). To achieve this goal, a high-voltage power module featuring Bluetooth-based remote control and adjustable operating frequency was designed and implemented.
The Bluetooth-Modulated Power Source (BMPS) developed in this study utilizes a smartphone as the signal source. Through a dedicated mobile application, the user can configure the frequency and amplitude of the output sine wave, which is then transmitted via Bluetooth to a receiver chip embedded within the BMPS. The received signal is processed and amplified using an LM386 power amplifier, serving as the driving signal for the BJT switch. The system is powered by a portable power bank supplying direct current. By modulating the current through the BJT switch, the system generates a voltage fluctuation, which is subsequently stepped up to several kilovolts via a transformer to initiate plasma discharge.
In this study, a dielectric barrier discharge (DBD) system was integrated with the BMPS to generate plasma in an argon environment for the detection of organic compounds. The DBD configuration employed consisted of a copper electrode–dielectric layer–copper electrode structure, with the dielectric material composed of glass fiber reinforced with a carbon-containing epoxy resin. Electrode patterns were fabricated on the copper surface using a wet etching process based on the heat toner transfer method.
Experimental results revealed that during discharge in pure argon, characteristic organic emission peaks such as CH and C₂ appeared, indicating ablation of the dielectric layer. The intensity of these peaks increased with prolonged discharge time. To mitigate the ablation effect, electrode geometry was optimized based on electrical characteristics and spectral signatures. It was ultimately determined that when the high-voltage electrode was triangular (0.3 × 0.2 cm), the floating electrode was an equilateral triangle (0.26 × 0.23 cm), and the width of the backing electrode was 0.5 cm, the extent of ablation was minimized.
Moreover, this electrode configuration demonstrated superior stability: during repeated discharges at a fixed ethanol concentration, it exhibited the lowest intensity variation among discharges on the same DBD unit, as well as the highest reproducibility across different batches.
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dc.description.tableofcontents口試委員會審定書 #
誌謝 i
中文摘要 iii
ABSTRACT v
目次 vii
圖次 x
表次 xvi
第 1 章 緒論 1
1.1 前言 1
1.2 研究動機與目標 2
1.3 論文總覽 2
第 2 章 文獻回顧 3
2.1 電漿簡介 3
2.1.1 電漿物理 3
2.1.2 崩潰電漿與帕邢定律 5
2.1.3 電漿系統之壓力影響 6
2.2 微電漿簡介 7
2.2.1 微電漿種類 7
2.2.2 微電漿應用 11
2.3 介電層屏蔽放電系統 16
2.3.1 DBD種類、浮動電極設計 16
2.3.2 DBD放電原理、等效電路 19
2.4 氣體檢測器 24
2.4.1 常見氣體檢測器、原理50-56 24
2.4.2 電漿系統之氣體檢測器 32
第 3 章 實驗設備 41
3.1 微電漿產生裝置製備 41
3.1.1 微電漿產生裝置(Microplasma generation device, MGD) 41
3.1.2 電極設計參數 43
3.2 藍芽遙控高壓模組 45
3.2.1 藍芽模組升壓原理 45
3.3 電漿檢測方法、化學藥品 49
3.3.1 電性檢測 49
3.3.2 光學檢測 51
3.3.3 化學樣品 54
3.4 微電漿檢測平台 55
3.4.1 檢測腔體製作 55
3.4.2 樣品前處理&進料流程 56
第 4 章 實驗結果與討論 59
4.1 微電漿氬氣光譜 59
4.1.1 微電漿光譜特徵 59
4.1.2 光纖收光位置校正實驗 60
4.1.3 MGD decay問題 64
4.2 不同MGD設計的影響 68
4.2.1 定量分析手法 68
4.2.2 背電極寬度分析 69
4.2.3 高壓電極尺寸分析 72
4.2.4 浮動電極尺寸之分析 78
4.2.5 MGD電極設計結論 81
4.3 不同電性操作條件探討 82
4.3.1 電性檢測(功率) 82
4.3.2 MGD6與MGD1在15、18kHz下各種比較 84
第 5 章 實驗結果與討論 93
參考文獻 95
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dc.language.isozh_TW-
dc.subject微電漿zh_TW
dc.subject氣體檢測器zh_TW
dc.subject可攜式zh_TW
dc.subject氬氣電漿zh_TW
dc.subject藍芽遙控zh_TW
dc.subject介電層阻擋放電zh_TW
dc.subject電漿放射光譜zh_TW
dc.subjectargon plasmaen
dc.subjectmicroplasmaen
dc.subjectgas detectoren
dc.subjectportableen
dc.subjectplasma optical emission spectroscopyen
dc.subjectdielectric barrier dischargeen
dc.subjectBluetooth remote control plasmaen
dc.title結合可攜式微電漿產生器與藍芽遙控高壓模組應用於偵測揮發性有機物zh_TW
dc.titleDetection of Volatile Organic Compounds Using Portable Plasma Generation Device Driven by a Bluetooth-Modulated Power Sourceen
dc.typeThesis-
dc.date.schoolyear113-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee謝之真;林致廷zh_TW
dc.contributor.oralexamcommitteeChih-Chen Hsieh;Chih-Ting Linen
dc.subject.keyword微電漿,氣體檢測器,可攜式,氬氣電漿,藍芽遙控,介電層阻擋放電,電漿放射光譜,zh_TW
dc.subject.keywordmicroplasma,gas detector,portable,Bluetooth remote control plasma,argon plasma,dielectric barrier discharge,plasma optical emission spectroscopy,en
dc.relation.page110-
dc.identifier.doi10.6342/NTU202503204-
dc.rights.note同意授權(全球公開)-
dc.date.accepted2025-08-13-
dc.contributor.author-college工學院-
dc.contributor.author-dept化學工程學系-
dc.date.embargo-lift2030-08-04-
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