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姓名 趙令宇(Ling-yu Zhao) 查詢紙本館藏 畢業系所 光電科學與工程學系 論文名稱 聲波應力感測薄模整合至高分子聚合物波導之光學軟性平台
(Polymer Waveguide on Optical Flexible Printed Circuit Board with Acoustic Sensing Membrane)相關論文 檔案 [Endnote RIS 格式]
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至系統瀏覽論文 (2025-7-1以後開放)
摘要(中) 本論文提出由絕緣層覆矽晶圓製作的聲波應力感測薄模整合至高分子聚合物波導之光學軟性平台。其設計工作原理為聲波應力感測薄模受到聲波作用導致薄膜產生振動,而薄膜上的矽塊改變高分子聚合物波導中的光通量,並透過光偵測器檢測光通量之變化,進而解析聲波應力。
光學軟性平台有兩種設計:長直波導與T形波導。此兩種光學軟性平台皆是採用高分子聚合物製做出具有空氣導溝的波導結構。長直波導與T形波導的光學軟性平台差異在於T形波導的光學軟性平台可藉由差動訊號來放大訊號。而聲波應力感測薄膜則是由絕緣層覆矽晶圓經過蝕刻製程製作出薄膜與矽塊。
長直波導光學軟性平台的光學耦合效率為 -10.1 dB,而模擬值為 -9.5 dB。聲波應力感測薄膜的位移量測結果在1 Pa的聲壓下為 ±6 nm,模擬值為±0.7 μm ~ ±1.8 μm。光學軟性平台的模擬與量測具有一致性。而聲波應力感測薄膜的位移量測結果與模擬相差甚多,推論原因是聲波應力感測薄膜經蝕刻製程後,其內有殘留應力而使薄膜有翹曲現象,進而改變整體震動特性。
摘要(英) In this thesis, the acoustic sensing membrane which is made by silicon on insulator (SOI) wafer combines with polymer waveguide on an optical flexible printed circuit board (PCB). The vibration of acoustic sensing membrane is caused by acoustic force, the light intensity is modulated by the vibrated membrane. The variation optical flux of waveguide is monitored by photodiode to analyze the acoustic force.
The optical designs for the polymer waveguides on the optical flexible PCB include the straight and T shape polymer waveguides, respectively. Compared to the straight polymer waveguide, the T shape polymer waveguide can generate the differential signal so as to increase the output signal level.
The acoustic sensing membrane realized on a silicon on insulator (SOI) wafer is fabricated through a dry etching process. The optical efficiency of straight polymer waveguide on optical flexible printed circuit board is -10.1 dB, and the simulation result is -9.5 dB. The displacement of acoustic sensing membrane is ±6 nm when the sound pressure is 1 Pa, and the simulation results range from ±0.7 μm to ±1.8 μm. The variation between the simulation and measurement is due to the facts that the residual stress on the fabricated acoustic sensing membrane would reduce the vibration displacement of the membrane.
關鍵字(中) ★ 薄膜 關鍵字(英) ★ Membrane 論文目次 摘要 i
Abstract ii
致謝 iii
目錄 iv
圖目錄 vi
表目錄 x
符號說明 xi
第一章 緒論 1
1-1前言 1
1-2研究目的與原理 7
第二章 光學聲波感測模組-光學軟性平台設計 10
2-1光學聲波感測模組 10
2-2軟性長直波導光學平台模擬 14
2-3軟性T型波導光學平台模擬 20
第三章 聲波應力感測薄膜設計 24
3-1聲波應力感測薄膜設計 24
3-2聲波應力感測薄膜模擬 26
第四章 光學聲波感測模組製作結果 32
4-1軟性長直導波光學平台製作結果 32
4-2聲波應力感測薄膜製作結果 35
第五章 光學聲波感測模組量測 39
5-1軟性長直導波光學平台量測 39
5-2聲波應力感測薄膜位移量測 40
第六章 結論與未來展望 46
光學聲波應力感測模組的模擬與量測結論 46
未來展望 47
參考文獻 48
參考文獻 [1] Eargle, John, The Microphone Book, 2nd edition, Focal Press, Oxford, 2005.
[2] Kots, A. and Paritsky A., “Fiber optic microphone for harsh environment”, SPIE, Vol. 3852, pp106-112, 1999.
[3] “Optical microphone offers greater sensitivity ” optics.org, 04 Jul. 2013.
[4] 5. J. Lewis, “Microphone Array Beamforming,” Analog Devices, AN-1140 APPLICATION NOTE, pp. 1 –8, 2012.N. Bilaniuk, “Optical Microphone Transduction Techniques,” Applied Acoustics, vol. 50, pp. 35-63, 1997.
[5] K. Suzuki, H. Funaki and Y. Naruse, “MEMS optical microphone with electrostatically controlled grating diaphragm,” MEASUREMENT SCIENCE AND TECHNOLOGY, 17, pp. 819–824, 2006
[6] N. A. Hall, M. Okandan, R. Littrell, B. Bicen and F. L. Degertekin, “Micromachined optical microphone structures with low thermal-mechanical noise levels,” J. Acoust. Soc. Am., 122(4), pp. 2031–2037, Oct. 2007
[7] Baris Bicen, Levent Degertekin, Oliver Brand, Kenneth Cunefare, Jerry Ginsberg, Ronald Miles, “Micromachined diffraction based optical microphones and intensity probes with electrostatic force feedback,” Dissertation, Ph.D. , May 2010
[8] Tetsuya Mori, Keizo Takahama, Makoto Fujiwara, Kei Watanabe, Hiroshi Owari, Yoji Shirato, Shinsuke Terada, Mariko Sakamoto and Koji Choki, “Optical and electrical hybrid flexible printed circuit boards with unique photo-defined polymer waveguide layers” Sumitomo Bakelite Co., Ltd., COIN project team, 495 Akiba-cho, Totsuka-ku, Yokohama, 2450052 JAPAN
[9] 朱長純, 趙虹坡, 韓建強, 崔萬照, “MEMS薄膜中的殘餘應力問題” 西安交通大學電信學院真空微電子所, 陝西 西安, 微納電子技術 2003年第10期,1671-4776
[10] A.E. Kabir, R. Bashir, J. Bernstein, J. De Santis, R. Mathews, J.O. O’Boyle and C. Bracken, “High sensitivity acoustic transducers with thin p+ membranes and gold back-plate”, Sensors and Actuators A, 78 (1999), 138-142.
[11] John J., Neumann Jr., Kaigham J. and Gabriel, “CMOS-MEMS membrane for audio-frequency acoustic actuation”, Sensors and Actuators A 95 (2002), 175-182.
指導教授 伍茂仁、鍾德元(Mount-learn Wu Te-yuan Chung) 審核日期 2015-7-21 推文 plurk
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