請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/67402完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 李嗣涔 | |
| dc.contributor.author | Chih-Yu Lin | en |
| dc.contributor.author | 林志諭 | zh_TW |
| dc.date.accessioned | 2021-06-17T01:30:47Z | - |
| dc.date.available | 2017-08-10 | |
| dc.date.copyright | 2017-08-10 | |
| dc.date.issued | 2017 | |
| dc.date.submitted | 2017-08-03 | |
| dc.identifier.citation | 1. National Police Agency, Ministry of the Interior. Available from: https://www.npa.gov.tw/NPAGip/wSite/ct?xItem=81174&ctNode=12926.
2. Y. -S. Long, C. -L. Lee, H. -C. Ma, C. –C. Liang, X. –L. Chen, and M. -J. Kao, Breath-Alcohol Measurement Traceability and Quality Assurance Certification in Application of Forensic Science. National Taiwan Police College Bulletin, 5(4): p. 161-178. (2012). 3. Jones AW, Logan BK: DUI defense; In Karch SNB(Ed): Drug Abuse Handbook; CRC Press: Boca Raton, FL; pp 1006-1045; (1998). 4. American, Scientific. Available from: http://sa.ylib.com/MagArticle.aspx?Unit=columns&id=385. 5. Fujimoto, Akira and Ryota Nakade, Optimum Condition for Identification of Alcoholic Gases by Transient Response of Semiconductor Gas Sensor. Procedia Engineering, 2014. 87: p. 1055-1058. 6. Rao, B Bhooloka, Zinc oxide ceramic semi-conductor gas sensor for ethanol vapour. Materials Chemistry and Physics, 2000. 64(1): p. 62-65. 7. Bertsch, Wolfgang, Two‐Dimensional Gas Chromatography. Concepts, Instrumentation, and Applications–Part 1: Fundamentals, Conventional Two‐Dimensional Gas Chromatography, Selected Applications. Journal of Separation Science, 1999. 22(12): p. 647-665. 8. Phillips, Michael, Renee N Cataneo, Andrew RC Cummin, Anthony J Gagliardi, Kevin Gleeson, Joel Greenberg, Roger A Maxfield, and William N Rom, Detection of lung cancer with volatile markers in the breath. Chest Journal, 2003. 123(6): p. 2115-2123. 9. Phillips, Michael, Kevin Gleeson, J Michael B Hughes, Joel Greenberg, Renee N Cataneo, Leigh Baker, and W Patrick McVay, Volatile organic compounds in breath as markers of lung cancer: a cross-sectional study. The Lancet, 1999. 353(9168): p. 1930-1933. 10. Schweigkofler, Martin and Reinhard Niessner, Determination of siloxanes and VOC in landfill gas and sewage gas by canister sampling and GC-MS/AES analysis. Environmental science & technology, 1999. 33(20): p. 3680-3685. 11. Antczak, Adam, Markers of oxidative stress in exhaled breath condensate. NATO Science Series, Series, 2002. 1: p. 333-337. 12. WebBook, National Institute of Standards and Technology Chemistry. http://webbook.nist.gov/cgi/cbook.cgi?ID=C64175&Type=IR-SPEC&Index=1#IR-SPEC. 13. Plyler, Earle K, Infrared Spectra of Methanol, Ethanol, and rz-Propanol. Journal of Research of the National Bureau of Standards, 1952. 48(4). 14. Doroshenko, Irina, Valeriy Pogorelov, and Valdas Sablinskas, Infrared absorption spectra of monohydric alcohols. Dataset Papers in Science, 2012. 2013. 15. Hodgkinson, Jane and Ralph P Tatam, Optical gas sensing: a review. Measurement Science and Technology, 2012. 24(1): p. 012004. 16. Bakhirkin, Yury A, Anatoliy A Kosterev, Chad Roller, Robert F Curl, and Frank K Tittel, Mid-infrared quantum cascade laser based off-axis integrated cavity output spectroscopy for biogenic nitric oxide detection. Applied optics, 2004. 43(11): p. 2257-2266. 17. McNeal, Mark P, Nicholas Moelders, Martin U Pralle, Irina Puscasu, Lisa Last, William Ho, Anton C Greenwald, James T Daly, Edward A Johnson, and Thomas George. Development of optical MEMS CO2 sensors. in International Symposium on Optical Science and Technology. 2002. International Society for Optics and Photonics. 18. Feng, Rui, Weiqiang Ding, Linhua Liu, Lixue Chen, Jun Qiu, and Guoqiang Chen, Dual-band infrared perfect absorber based on asymmetric T-shaped plasmonic array. Optics express, 2014. 22(102): p. A335-A343. 19. Cetin, Arif E, Dordaneh Etezadi, Betty C Galarreta, Mickael P Busson, Yasa Eksioglu, and Hatice Altug, Plasmonic nanohole arrays on a robust hybrid substrate for highly sensitive label-free biosensing. ACS Photonics, 2015. 2(8): p. 1167-1174. 20. Chen, Kai, Ronen Adato, and Hatice Altug, Dual-band perfect absorber for multispectral plasmon-enhanced infrared spectroscopy. Acs Nano, 2012. 6(9): p. 7998-8006. 21. Miyazaki, HT, T Kasaya, M Iwanaga, B Choi, Y Sugimoto, and K Sakoda, Dual-band infrared metasurface thermal emitter for CO2 sensing. Applied Physics Letters, 2014. 105(12): p. 121107. 22. Dao, Thang Duy, Kai Chen, Satoshi Ishii, Akihiko Ohi, Toshihide Nabatame, Masahiro Kitajima, and Tadaaki Nagao, Infrared perfect absorbers Fabricated by colloidal mask etching of Al–Al2O3–Al trilayers. ACS Photonics, 2015. 2(7): p. 964-970. 23. Zhao, Hua-Jun, Yong-You Tian, and Ju-Hua Lei. Gas sensors for refractive index detection using surface plasmon resonance on nanosystem. in International Symposium on Photonics and Optoelectronics (SOPO 2014). 2014. International Society for Optics and Photonics. 24. Sawada, Takahiro, Katsuya Masuno, Shinya Kumagai, Makoto Ishii, Shouichi Uematsu, and Minoru Sasaki. Enhanced wavelength selective infrared emission using surface plasmon polariton and thermal energy confined in micro-heater. in Micro Electro Mechanical Systems (MEMS), 2014 IEEE 27th International Conference on. 2014. IEEE. 25. Cheng, Fei, Xiaodong Yang, and Jie Gao, Enhancing intensity and refractive index sensing capability with infrared plasmonic perfect absorbers. Optics letters, 2014. 39(11): p. 3185-3188. 26. Calaza, Carlos, E Meca, Santiago Marco, Mauricio Moreno, J Samitier, Luis Fonseca, I Gracia, and C Cane, Assessment of the final metrological characteristics of a MOEMS-based NDIR spectrometer through system modeling and data processing. IEEE sensors journal, 2003. 3(5): p. 587-594. 27. Yoo, KP, HP Hong, MJ Lee, SJ Min, CW Park, WS Choi, and NK Min, Fabrication, characterization and application of a microelectromechanical system (MEMS) thermopile for non-dispersive infrared gas sensors. Measurement Science and Technology, 2011. 22(11): p. 115206. 28. Wang, Yanfeng, Masakatsu Nakayama, Mikiko Yagi, Makoto Nishikawa, Masaichi Fukunaga, and Kenzo Watanabe, The NDIR CO/sub 2/monitor with smart interface for global networking. IEEE Transactions on instrumentation and measurement, 2005. 54(4): p. 1634-1639. 29. Chen, Song, Tomuo Yamaguchi, and Kenzo Watanabe. A simple, low-cost non-dispersive infrared CO/sub 2/monitor. in Sensors for Industry Conference, 2002. 2nd ISA/IEEE. 2002. IEEE. 30. Padhy, Himansu Mohan and Pranati Mishra, Detection of Liquefied and Gaseous form of CO2 Implementing New Method in Non-Dispersive Infrared Spectroscopy Sensor System. Global Journal of Science Frontier Research, 2012. 12(2-H). 31. Faist, Jerome, Federico Capasso, Deborah L Sivco, Carlo Sirtori, Albert L Hutchinson, and Alfred Y Cho, Quantum cascade laser. Science, 1994. 264(5158): p. 553-556. 32. Faist, Jérôme, Federico Capasso, Deborah L Sivco, Albert L Hutchinson, Sung-Nee G Chu, and Alfred Y Cho, Short wavelength (λ∼ 3.4 μ m) quantum cascade laser based on strained compensated InGaAs/AlInAs. Applied Physics Letters, 1998. 72(6): p. 680-682. 33. Faugeras, Clément, Sébastien Forget, Elizabeth Boer-Duchemin, Hideaki Page, J-Y Bengloan, Olivier Parillaud, Michel Calligaro, Carlo Sirtori, Marcella Giovannini, and Jérôme Faist, High-power room temperature emission quantum cascade lasers at/spl lambda/= 9/spl mu/m. IEEE journal of quantum electronics, 2005. 41(12): p. 1430-1438. 34. Abbas, Mohammed Nadhim, Cheng-Wen Cheng, Yia-Chung Chang, Min-Hsiung Shih, Hung-Hsin Chen, and Si-Chen Lee, Angle and polarization independent narrow-band thermal emitter made of metallic disk on SiO 2. Applied Physics Letters, 2011. 98(12): p. 121116. 35. Lévêque, Gaëtan and Olivier JF Martin, Tunable composite nanoparticle for plasmonics. Optics letters, 2006. 31(18): p. 2750-2752. 36. Pralle, MU, N Moelders, MP McNeal, I Puscasu, AC Greenwald, JT Daly, EA Johnson, T George, DS Choi, and I El-Kady, Photonic crystal enhanced narrow-band infrared emitters. Applied Physics Letters, 2002. 81(25): p. 4685-4687. 37. Li, Fangqiang, Haisheng San, Meijing Cheng, and Xuyuan Chen. Micro-machined infrared emitter with metallic photonic crystals structure. in 4th International Symposium on Advanced Optical Manufacturing and Testing Technologies: Design, Manufacturing, and Testing of Micro-and Nano-Optical devices and Systems. 2009. International Society for Optics and Photonics. 38. Lin, Shawn-Yu, J Moreno, and JG Fleming, Three-dimensional photonic-crystal emitter for thermal photovoltaic power generation. Applied Physics Letters, 2003. 83(2): p. 380-382. 39. Lin, SY, JG Fleming, and I El-Kady, Highly efficient light emission at λ= 1.5 μm by a three-dimensional tungsten photonic crystal. Optics letters, 2003. 28(18): p. 1683-1685. 40. Chen, Qin and David RS Cumming, High transmission and low color cross-talk plasmonic color filters using triangular-lattice hole arrays in aluminum films. Optics express, 2010. 18(13): p. 14056-14062. 41. Homola, Jiřı́, Sinclair S Yee, and Günter Gauglitz, Surface plasmon resonance sensors: review. Sensors and Actuators B: Chemical, 1999. 54(1): p. 3-15. 42. Barnes, William L, Alain Dereux, and Thomas W Ebbesen, Surface plasmon subwavelength optics. Nature, 2003. 424(6950): p. 824-830. 43. Tsai, Ming-Wei, Tzu-Hung Chuang, Chao-Yu Meng, Yi-Tsung Chang, and Si-Chen Lee, High performance midinfrared narrow-band plasmonic thermal emitter. Applied physics letters, 2006. 89(17): p. 173116. 44. Chen, Chia-Yi, Ming-Wei Tsai, Yu-Wei Jiang, Yi-Han Ye, Yi-Tsung Chang, and Si-Chen Lee, Coupling of surface plasmons between two silver films in a plasmonic thermal emitter. Applied Physics Letters, 2007. 91(24): p. 243111. 45. Fu, Han-Kuei, Yu-Wei Jiang, Ming-Wei Tsai, Si-Chen Lee, and Yang-Fang Chen, A thermal emitter with selective wavelength: Based on the coupling between photonic crystals and surface plasmon polaritons. Journal of Applied Physics, 2009. 105(3): p. 033505. 46. Schuller, Jon A, Thomas Taubner, and Mark L Brongersma, Optical antenna thermal emitters. Nature Photonics, 2009. 3(11): p. 658-661. 47. Tay, Savaş, Aleksandr Kropachev, Ismail Emre Araci, Terje Skotheim, Robert A Norwood, and N Peyghambarian, Plasmonic thermal IR emitters based on nanoamorphous carbon. Applied Physics Letters, 2009. 94(7): p. 071113. 48. Chang, Pei-En, Yu-Wei Jiang, Hung-Hsin Chen, Yi-Tsung Chang, Yi-Ting Wu, Lawrence Dah-Ching Tzuang, Yi-Han Ye, and Si-Chen Lee, Wavelength selective plasmonic thermal emitter by polarization utilizing Fabry-Pérot type resonances. Applied Physics Letters, 2011. 98(7): p. 073111. 49. Cheng, Cheng-Wen, Mohammed Nadhim Abbas, Chao-Wei Chiu, Kun-Ting Lai, Min-Hsiung Shih, and Yia-Chung Chang, Wide-angle polarization independent infrared broadband absorbers based on metallic multi-sized disk arrays. Optics express, 2012. 20(9): p. 10376-10381. 50. Hao, Jiaming, Jing Wang, Xianliang Liu, Willie J Padilla, Lei Zhou, and Min Qiu, High performance optical absorber based on a plasmonic metamaterial. Applied Physics Letters, 2010. 96(25): p. 251104. 51. Liu, Na, Martin Mesch, Thomas Weiss, Mario Hentschel, and Harald Giessen, Infrared perfect absorber and its application as plasmonic sensor. Nano letters, 2010. 10(7): p. 2342-2348. 52. Puscasu, Irina and William L Schaich, Narrow-band, tunable infrared emission from arrays of microstrip patches. Applied Physics Letters, 2008. 92(23): p. 233102. 53. Todorov, Yanko, Lorenzo Tosetto, Jean Teissier, Aaron Maxwell Andrews, Pavel Klang, Raffaele Colombelli, Isabelle Sagnes, Gottfried Strasser, and Carlo Sirtori, Optical properties of metal-dielectric-metal microcavities in the THz frequency range. Optics express, 2010. 18(13): p. 13886-13907. 54. Ye, Yi-Han, Yu-Wei Jiang, Ming-Wei Tsai, Yi-Tsung Chang, Chia-Yi Chen, Dah-Ching Tzuang, Yi-Ting Wu, and Si-Chen Lee, Coupling of surface plasmons between two silver films in a Ag/SiO 2/Ag plasmonic thermal emitter with grating structure. Applied Physics Letters, 2008. 93(26): p. 263106. 55. Collin, Stéphane, Fabrice Pardo, and Jean-Luc Pelouard, Waveguiding in nanoscale metallic apertures. Optics Express, 2007. 15(7): p. 4310-4320. 56. Jiang, Yu-Wei, Yi-Ting Wu, Ming-Wei Tsai, Pei-En Chang, Dah-Ching Tzuang, Yi-Hen Ye, and Si-Chen Lee, Characteristics of a waveguide mode in a trilayer Ag/SiO 2/Au plasmonic thermal emitter. Optics letters, 2009. 34(20): p. 3089-3091. 57. Lee, BJ and ZM Zhang, Design and fabrication of planar multilayer structures with coherent thermal emission characteristics. Journal of Applied Physics, 2006. 100(6): p. 063529. 58. Wu, Yi-Ting, Yi-Tsung Chang, Hung-Hsin Chen, Hao-Fu Huang, Dah-Ching Tzuang, Yu-Wei Jiang, Pei-En Chang, and Si-Chen Lee, Narrow bandwidth midinfrared waveguide thermal emitters. IEEE Photonics Technology Letters, 2010. 22(15): p. 1159-1161. 59. Cheng, D.K., Field and wave electromagnetics. Vol. 2. Addison-Wesley New York.(1989). 60. Palik, E.D., Handbook of optical constants of solids. Vol. 3. Academic press.(1998). 61. Chen, Hung-Hsin, Yu-Wei Jiang, Yi-Ting Wu, Pei-En Chang, Yi-Tsung Chang, Hao-Fu Huang, and Si-Chen Lee, Narrow bandwidth and highly polarized ratio infrared thermal emitter. Applied Physics Letters, 2010. 97(16): p. 163112. 62. Chen, Hung-Hsin, Hui-Hsin Hsiao, Hung-Chun Chang, Wei-Lun Huang, and Si-Chen Lee, Double wavelength infrared emission by localized surface plasmonic thermal emitter. Applied Physics Letters, 2014. 104(8): p. 083114. 63. Chen, Hung-Hsin, Yi-Tsung Chang, Shao-Yu Huang, Fang-Tzu Chuang, Chih-Wei Yu, and Si-Chen Lee, Two infrared emission modes with different wavelengths and orthogonal polarization in a waveguide thermal emitter. Journal of Applied Physics, 2012. 112(7): p. 074325. 64. Cole, BE, RE Higashi, and RA Wood, Monolithic two-dimensional arrays of micromachined microstructures for infrared applications. Proceedings of the IEEE, 1998. 86(8): p. 1679-1686. 65. Maier, Thomas and Hubert Brückl, Wavelength-tunable microbolometers with metamaterial absorbers. Optics letters, 2009. 34(19): p. 3012-3014. 66. Niklaus, Frank, Christian Vieider, and Henrik Jakobsen. MEMS-based uncooled infrared bolometer arrays: a review. in Photonics Asia 2007. 2007. International Society for Optics and Photonics. 67. Ogawa, Shinpei, Kazuya Okada, Naoki Fukushima, and Masafumi Kimata, Wavelength selective uncooled infrared sensor by plasmonics. Applied Physics Letters, 2012. 100(2): p. 021111. 68. Ogawa, Shinpei, Junya Komoda, Kyohei Masuda, and Masafumi Kimata, Wavelength selective wideband uncooled infrared sensor using a two-dimensional plasmonic absorber. Optical Engineering, 2013. 52(12): p. 127104-127104. 69. Ambrosio, Roberto, Mario Moreno, Jose Mireles, Alfonso Torres, Andrey Kosarev, and Aurelio Heredia, An overview of uncooled infrared sensors technology based on amorphous silicon and silicon germanium alloys. Physica status solidi (c), 2010. 7(3‐4): p. 1180-1183. 70. Malyarov, VG, Igor A Khrebtov, Yu V Kulikov, Igor I Shaganov, V Yu Zerov, and Nikolai A Feoktistov. Comparative investigations of the bolometric properties of thin film structures based on vanadium dioxide and amorphous hydrated silicon. in International Conference on Photoelectronics and Night Vision Devices. 1999. International Society for Optics and Photonics. 71. Chen, Hung-Hsin, Yan-Chi Su, Wei-Lun Huang, Chun-Yen Kuo, Wei-Cheng Tian, Miin-Jang Chen, and Si-Chen Lee, A plasmonic infrared photodetector with narrow bandwidth absorption. Applied Physics Letters, 2014. 105(2): p. 023109. 72. WebBook, National Institute of Standards and Technology Chemistry. http://webbook.nist.gov/cgi/cbook.cgi?ID=C67641&Type=IR-SPEC&Index=1#IR-SPEC. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/67402 | - |
| dc.description.abstract | 本論文主要研究將金屬柵欄嵌入波導型紅外線發射器的結構。主要構想為利用中間的金屬柵欄將原本存在的波導型表面電漿子模態分成兩個極化方向,另外再加上金屬柵欄與底層金屬互相耦合所產生的侷域型表面電漿子模態。這種新型的多波段紅外線發射器可以被應用在傳統的非色散式紅外線分析系統來降低系統的複雜度以及減少所需要耗費的能量。
酒精用的三波段窄頻紅外線發射器會被製作出來藉由在嵌有金屬柵欄的波導型紅外線發射器上添加額外的 金/二氧化鈦/金 三層島狀結構。這個額外的三層島狀結構可以產生一個侷域型的表面電漿子模態。藉由原本的波導型及侷域型的表面電漿子模態再加上額外添加的侷域型表面電漿子模態來實現三波段的窄頻紅外線發射器。 | zh_TW |
| dc.description.abstract | In this thesis, the metallic grating embedded in waveguide thermal emitter would be investigated. The grating embedded in the dielectric could split the waveguide mode into two polarization modes and the localized surface plasmon mode coupled between the grating layer and bottom metal layer would be generated. It can be applied in NDIR system to simply the complexity of the system and reduce the power consumption.
The triple-wavelength narrow bandwidth infrared thermal emitter for alcohol would also be fabricated by adding the Au / TiO2 / Au island structure on top of the waveguide thermal emitter inserted by the metallic grating. This island structure could generate the localized surface plasmon mode. With two localized surface plasmon modes and one waveguide mode, the triple-wavelength emitter can be realized. | en |
| dc.description.provenance | Made available in DSpace on 2021-06-17T01:30:47Z (GMT). No. of bitstreams: 1 ntu-106-R04941097-1.pdf: 2655969 bytes, checksum: 5d27b33e0da00e089704beb715c3470b (MD5) Previous issue date: 2017 | en |
| dc.description.tableofcontents | 誌謝 I
摘要 II ABSTRACT III CONTENTS IV LIST OF FIGURES VI LIST OF TABLES IX Chapter 1 1 Introduction 1 Chapter 2 11 The Basic Theorem of Surface Plasmons and the Fabrication Processes of the Emitter and Detector 11 2.1 The fundamentals of surface plasmons 11 2.2 Fabrication Processes of Patterned- Metal/ Dielectric/ Metal tri-layers structure 23 2.3 Fabrication Processes of Photodetector 28 2.4 Measuring Systems 29 Chapter 3 32 Grating Embedded in Waveguide Thermal Emitter 32 3.1 Experiments 36 3.2 Results and Discussion 40 3.3 Summary 50 Chapter 4 51 Triple-Wavelength Narrow Bandwidth Infrared Thermal Emitter for Alcohol 51 4.1 Dual-band thermal emitter for emission peak at 3.4 μm and 5 μm 54 4.2 Triple-wavelength thermal emitter for emission peaks at 3.4 μm, 5 μm and 9.4 μm 63 4.3 Summary 71 Chapter 5 72 Conclusion 72 Bibliography 73 | |
| dc.language.iso | en | |
| dc.subject | 紅外線發光元件 | zh_TW |
| dc.subject | 酒精偵測 | zh_TW |
| dc.subject | 表面電漿子 | zh_TW |
| dc.subject | Surface plasmon | en |
| dc.subject | the alcohol detection | en |
| dc.subject | infrared thermal emitter | en |
| dc.title | 用於酒精偵測的多波段紅外線發射器 | zh_TW |
| dc.title | Multi-band Infrared Thermal Emitter for Alcohol Detection | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 105-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 林清富,蔡熊光,陳敏璋 | |
| dc.subject.keyword | 表面電漿子,酒精偵測,紅外線發光元件, | zh_TW |
| dc.subject.keyword | Surface plasmon,the alcohol detection,infrared thermal emitter, | en |
| dc.relation.page | 85 | |
| dc.identifier.doi | 10.6342/NTU201702475 | |
| dc.rights.note | 有償授權 | |
| dc.date.accepted | 2017-08-04 | |
| dc.contributor.author-college | 電機資訊學院 | zh_TW |
| dc.contributor.author-dept | 光電工程學研究所 | zh_TW |
| 顯示於系所單位: | 光電工程學研究所 | |
文件中的檔案:
| 檔案 | 大小 | 格式 | |
|---|---|---|---|
| ntu-106-1.pdf 未授權公開取用 | 2.59 MB | Adobe PDF |
系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。
