博碩士論文 962206055 詳細資訊




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姓名 顏嘉宏(Jya-hong Yan)  查詢紙本館藏   畢業系所 光電科學與工程學系
論文名稱 表面電漿共振系統之相位擷取與分析
(Phase Acquisition and Data Analysis for a Surface-Plasmon-Resonance System)
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摘要(中) 本研究以相位移相干涉術(Phase-Shifting Interferometry)結合表面電漿共振(Surface Plasmon Resonance)技術,由CCD擷取影像,配合區間積分資料擷取(Integrated-Bucket data acquisition)的方法,進行相位的檢測。由光路的設計與時域的相位重建分別達到系統的穩定性和動態能力。本系統由實驗可得相位解析度為0.4度,系統的折射率解析度為7.8 × 10^-6 RIU (Refraction Index Unit)。本系統具有即時、高靈敏、高解析度、免標定、大量平行篩檢等優點,預計可運用於微生物分子鍵結反應分析(biomolecular interaction analysis, BIA)的量測領域上,如抗原與抗體之交互作用、蛋白質分子的非特定吸附或DNA雜交等。
摘要(英) A dynamic surface-plasmon-resonance imaging sensor was developed in this research. Phase-shifting interferometry with integrated-bucket data acquisition is employed to perform phase-image detection with a photodiode and a single CCD. System stability and dynamic capability were achieved through optical configuration design and temporal phase-extraction algorithm respectively. The resolution of phase detection was 0.4 degree, and the measurement sensitivity of refractive index was 7.8 × 10^-6 RIU (Refractive Index Unit). This system is capable of real-time measurements with high sensitivity, resolution, and throughput. It is anticipated to find applications in lable-free screening of biomolecular interactions, such as antibody-antigen interaction, nonspecific protein binding, and DNA hybridization.
關鍵字(中) ★ 表面電漿共振 關鍵字(英) ★ surface plasmon resonance
論文目次 摘要 I
Abstract II
致謝 III
目錄 V
圖目錄 VIII
表目錄 XIII
第一章 緒論 1
1-1 前言 1
1-2 文獻回顧 2
1-3研究動機 5
1-4 論文架構 6
第二章 金屬的介電函數 8
2-1 介電函數 8
2-2 金屬介電函數的表示式 11
第三章 SPR理論介紹 14
3-1 基本受激態介紹 14
3-1-1 金屬塊材電漿子-極化光子 15
3-1-2 表面電漿子極化光子 17
3-1-3 表面電漿共振原理 18
3-2 SPR 產生方式 21
3-3 衰逝波 23
3-4 SPR傳播性質 25
3-5 層狀介質系統之反射係數 28
3-5-1 兩層介質系統之反射係數 28
3-5-2三層介質系統之反射係數 31
3-6 本質與放射性阻尼(Internal and Radiation Damping) 34
3-7 SPR 光強度特性 38
3-7-1厚度關係 38
3-7-2 波長關係 39
3-7-3 待測物折射率關係 39
3-8 SPR 相位特性 40
3-8-1 厚度關係 41
3-8-2 待測物折射率關係 43
第四章 光學干涉與相移術 44
4-1 光學干涉基本原理 44
4-2 相移干涉術 46
4-2-1 五步相移法 48
4-2-2 相位的跳躍與解纏繞 50
4-3 動態相移干涉術 55
第五章 實驗系統設計與架構 63
5-1 SPR 相位影像系統設計 63
5-2 系統架構 70
5-3 感測片的設計 74
5-4 機構設計 76
5-5程式設計 81
第六章 實驗結果與分析 85
6-1 實驗的準備 85
6-2 實驗一 P極化光與S極化光的量測 89
6-3 實驗二 系統穩定性量測 90
6-4 實驗三 金膜表面粗糙度的量測 92
6-5 實驗四 不同鹽水折射率量測 94
6-6 實驗五 金膜陣列的量測 97
6-7 系統解析度分析 98
6-8 理論值與實驗值的比較 99
第七章 結論與未來展望 102
參考文獻 103
參考文獻 [1]Y. C. Li, Y. F. Chang, L. C. Su, and C Chou, “Differential-phase surface plasmon resonance biosensor,” Anal. Chem. Vol. 80, pp.5590-5595 (2008).
[2]H. P. Ho, W. C. Law, S. Y. Wu, Chinlon Lin, and S. K. Kong, “Real-time optical biosensor based on differential phase measurement of surface Plasmon resonance,” Biosensors and Bioelectronics, Vol. 20, pp. 2177-2180 (2005).
[3]R. J. Green, R. A. Frazier, K. M. Shakesheff, M. C. Davies, C. J. Roberts, and Saul J. B. Tendler, “Surface plasmon resonace analysis of dynamic biological interaction with biomaterials,” Biomaterials, Vol. 21, pp.1823-1835 (2000).
[4]D. R. Shankaran, K. V. Gobi, N. Miura, “Recent advancements in surface Plasmon resonance immunosensors for detection of small molecules of biomedical, food and environmental interest, ” Sens. Actuators B, 121, pp. 155-177 (2007).
[5]T. J. Davis, “Surface plasmon modes in multi-layer thin-film,” Opt. Commun. Vol. 282, pp.135-140 (2009).
[6]C. C. Lee and Y. J. Jen, “Influence of surface roughness on the calculation of optical constants of a metallic film by attenuated total reflection,” Appl. Opt. Vol. 38, No. 28, pp.6029-6033 (1999).
[7]X. Liu, D. Song, Q. Zhang, Y. Tian, L. Ding, and H. Zhang, “Wavelength-modulation surface plasmon resonance sensor,” Trends in Analytical Chemistry, Vol. 24, No. 10, pp.887-893 (2005).
[8]S. Y. Wu, and H. P. Ho, “Single-beam self-referenced phase-sensitive surface plasmon resonance sensor with high detection resolution,” Chin. Opt. Lett. Vol. 6, No. 3, pp. 176-178 (2008).
[9]王信福, “利用表面電漿共振原理及內部全反射外差干涉術之光電生化感測器,” 光學工程, 第九十六期, 13~19頁,(2006).
[10] W. W. Lam, L. H. Chu, C. L. Wong, and Y. T. Zhang, “A surface plasmon resonance system for the measurement of glucose in aqueous solution,” Sens. Actuators B, 105, pp. 138-134 (2005).
[11] T. Iwata, and G. Komoda, “Measurements of complex refractive indices of metals at several wavelengths by frustrated total internal reflection due to surface plasmon resonance,” Appl. Opt. Vol. 47, No. 13 (2008).
[12] M. Nakkach, P. Lecaruyer, F. Bardin, J. Sakly, Z. B. Lakhdar, and M. Canva, “Absorption and related optical dispersion effects on the spectral response of a surface plasmon resonance sensor,” Appl. Opt. Vol. 47, No. 33, pp.6177-6182 (2008).
[13] Z. Yingying, L. Jiancheng, Y. Cheng, and L. Zhenhua, “Determination of effective complex refractive index of a turbid liquid with surface plasmon resonance phase detection,” Appl. Opt. Vol. 48, No. 7, pp.1262-1267 (2009).
[14] J. J. Chyou, C. S. Chu, F. Ching, C. Y. Lin, T. L. Yeh, R. C. Hsu, and S. J. Chen, “Precise determination of the dielectric constant and thickness of a nanolayer by use of surface plasmon resonance sensing and multiexperiment linear data analysis,” Appl. Opt. Vol. 45, No. 23, pp.6038-6044 (2006).
[15] J. Homola, S. S. Yee, G. Gauglitz, “Surface plasmon resonance sensors: review,” Sens. Actuators B, 54, pp. 3-15 (1999).
[16] I. Abdulhalim, M. Zourob, and A. Lakhtakia, “Surface plasmon resonance for biosensoring: a mini-review,” Electromagnetic, 28, pp.214-242 (2008).
[17] X. Yu, X. Ding, F. Liu, and Y. Deng, “A novel surface plasmon resonance imaging interferometryfor protein array detection”, Sens. Actuators B, 130, pp.52-58 (2008).
[18] B. P. Nelson, A. G. Frutos, J. M. Brockman, and R. M. Corn, “Near-infrared surface plasmon resonance measurements of ultrathin films. 1. angle shift and SPR imaging experiments,” Anal. Chem. Vol. 71, pp.3928-3984 (1999).
[19] S. X. G. Huang, C. Deng, J. Zhu, C. Han, and X. Yang, “Label-free detection of protein microarray with high throughput surface plasmon resonance imaging,” Journal of Innovative Optical Health Sciences, Vol. 1, No. 1, pp.107-114 (2008).
[20] R. W. Wood, “On remarkable case uneven distribution of light in a diffraction grating spectrum,” Phil. Magm. 4, pp.396-402.
[21] Ritchie R H, “Plasma losses by fast electron in thin films, ” Phys. Rev. 106, 874 (1957).
[22] C. J. Powell and J. B. Swan, “Eeffect of oxidation on the characteristics loss spectra of alumimum and magnesium,” Phys Rev. 118, 640-643 (1960).
[23] A. Otto, “Excitation of surface plasma waves in silver by the method of frustrated total reflection,” Z. Physik. 216, pp.398-410 (1968).
[24] E. Krestschmann, “The determination of the optical constants of metals by excitation of surface plasmons,” Z. Phys. 241, pp.313-32 (1971).
[25] D. Sarid, “ Long-Range Surface-Plasma Waves on Very Thin Metal Films, ” Phys. Rev. Lett. 48, 446 ,1927-193 (1982).
[26] F. Y. Kou and T. Tamir, “Range extension of surface plasmons by dielectric layers,” Opt. Lett. 12, 367-369 (1987).
[27] S. G. Nelson, K. S. Johnston, S. S. Yee, “High sensitivity surface plasmon resonance sensor based on phase detection,” Sens. Actuators B, 35, pp.187-191 (1996).
[28] B. D. Gupta and A. K. Sharma, “Sensitivity evaluation of a multi-layered surface plasmon resonance-based fiber optic sensor: a theoretical study,” Sens. Actuators B, 107, pp. 40-46 (2005).
[29] 謝振傑, “光纖生物感測器,” 物理雙月刊, 二十八卷四期, 704~710頁, (2006).
[30] R. Slavik, J. Homola, and J. Ctyroky, “Single-mode optical fiber surface plasmon resonance sensor,” Sens. Actuators B, 54, pp.74-79 (1999)
[31] W. B. Lin, N. Jaffrezic-Renault, A. Gagnair, and Gagnaire H. , “The effects of polarization of the incident light-modeling and analysis of a SPR multimode optical fiber sensor,” Sens. Actuators A, 84, pp. 198-204 (2000).
[32] R. J. Bussjager and H. A. Macleod, “Using surface plasmon resonance to test the durability of silver-copper films,” Appl. Opt. Vol. 35, No. 25, pp.5044-5047 (1996).
[33] M. Piliarik, J. Homola, Z. Manikova, and J. Ctyroky, “Surface plasmon resonace sensor based on a single-mode polarization-maintaining optical fiber,” Sens. and Actuators B, 90, pp.236-242 (2003).
[34] E. Fontana, “A novel gold-coated multimode fiber sensor,” IEEE transactions on microwave theory and techniques, Vol. 50, No. 1, pp.82-87 (2002).
[35] A. K. Sharma and B. D. Gupta, “Fibre-optic sensor based on surface plasmon resonance with Ag-Au alloy nanoparticle films,” Institute of Physics Publishing. Nanotechnology 17, pp.124-131 (2006).
[36] C. M. Wu, Z. C. Jian, S. F. Joe, L. B. Chang, “High-sensitivity sensor based on surface plasmon resonance and heterodyne interferoetry,” Sens. and Actuators B, 92, pp.133-136 (2003).
[37] W. C. Kuo, C. Chou, and H. T. Wu, “Optical heterodyne surface –plasmon resonance biosensor,” Opt. Lett. Vol. 28, No. 15, pp.1329-1331 (2003).
[38] J. Guo, Z. Zhu, W. Deng, and S. Shen, “Angle measurement using surface-plasmon-resonance heterodyne interferoetry: a new method,” Opt. Eng. Vol. 37(11), pp.2998-3001 (1998).
[39] S. Shen, T. Liu, and J. Guo, “Optical phase-shift detection of surface plasmon resonance,” Appl. Opt. Vol. 37, No. 10, pp.1741-1751 (1998).
[40] S. Y. Wu, H. P. Ho, W. C. Law, and Chinlon Lin, “Highly sensitive differential phase-sensitive surface plasmon resonance biosensor based on the Mach-Zehnder configuration,”Opt. Let. Vol. 29, No. 20, pp.2378-2380 (2004).
[41] W. Yuan, H. P. Ho, C. L. Wong, S. K. Kong, and C. Lin, “Surface plasmon resonance biosensor incorporated in a Michelson interferometer with enhanced sensitivity,” IEEE Sens. Journal, Vol. 7, No. 1, pp.70-73 (2007).
[42] C. Chou, H. T. Wu, Y. C. Huang, Y. L. Chen, and W. C. Kuo, “Characteristics of a paired surface Plasma waves biosensor,” Opt. Express. Vol. 14, No. 10, pp.4307-4315 (2006).
[43] Z. Sun, Y. He, and J. Guo, “Surface plasmon resonance sensor based on polarization interferometry and angle modulation,” App. Opt. Vol. 45, No. 13, pp. 3071-3076 (2006).
[44] T. Iwata and S.Maede, “Simulation of an absorption-based surface-plasmon resonance sensor by means of ellipsometry,” Appl. Opt. Vol. 46, No. 9, pp.1575-1582 (2007)
[45] H. Arwin, M. Poksinski, and K. Johansen, “Enhancement in ellipsometric thin film sensitivity near surface plasmon resonance conditions,” Phys. Stat. Sol. Vol. 205, No. 4, pp. 817-820 (2008).
[46] S. F. Wang, M. H. Chiu, C. W. Lai, and R. S. Chang, “High-sensitivity small-angle sensor based on surface plasmon resonance technology and heterodyne interferometry,” Appl. Opt. Vol. 45, No. 26, pp. 6702-6707 (2006).
[47] W. Yuan, H. P. Ho, Y. K. Suen, S. K. Kong, and Chinlon Lin, “Improving the sensitivity limit of surface plasmon resonance biosensors by detecting mixed interference signals,” Appl. Opt. Vol. 46, No. 33, pp. 8068-8073 (2007).
[48] J. Y. Lee, T. K. Chou, and H. C. Shih, “Polarization-interferometric surface-pasmon-resonance imaging system,” Opt. Lett. Vol. 33, No. 5, pp.434-436 (2008).
[49] Y. D. Su, S. J. Chen, and T. L. Yeh, “Common-path phase-shift interferometry surface pasmon resonance imaging system,” Opt. Lett. Vol. 30, No. 12, pp. 1488-1490 (2005).
[50] X. Yu, X. Ding, F. Liu, X. Wei, and D. Wang, “A surface plasmon resonance interferometer based on spatial phase modulation for protein array detection,” Meas. Sci. Technol. Vol. 19, pp.1-10 (2008).
[51] C.L. Wong, H. P. Ho, T. T. Yu, Y. K. Suen, Winnie W. Y. Chow, S. Y. Wu, W. C. Law, W. Yuan, W. J. Li, S. K. Kong, and Chinion Lin, “Two-dimensional biosensor arrays based on surface plasmon resonance phase imaging,” Apt. Opt. Vol. 46, No. 12, pp.2325-2332 (2007).
[52] Y. H. Chen, S. S. Lee, I. H. Hsu, E. Tseng, and C. K. Lee, “A surface-plasmon resonance phase modulation bio-reaction detection system with (5,1) phase-shifting algorithm,” Proc. of SPIE. Vol.6800 pp. 68001Q (2008).
[53] P. I. Nikitin, A. N. Grigorenko, A. A. Beloglazov, M. V. Valeiko, A. I. Savchuk, O. A. Savchuk, G.. Steiner, C. Kuhne, A. Huebner, and R. Salzer, “Surface plasmon resonance interferometry for micro-array biosensing,” Sens. and Actuators B, 85, pp.189-193 (2000).
[54] 邱國斌、蔡定平,“金屬表面電漿簡介”,物理雙月刊(二十八卷二期),472~483頁,(2006)。
[55] 原著:Guru and Hiziroglu (編譯:劉宗平),“電磁學理論基礎/Electromagnetic Field Theory Fundamentals”,新科技書局,113頁~116頁,(2005)。
[56] 張阜權,孫榮山,唐偉國,“光學”,理工叢書,307~318頁,(1998)。
[57] 張克蘇,“表面電漿波在吸收性材料表面的傳播特性之研究”,中正理工學院,博士論文,1~10頁,(1992)。
[58] 原著:ITTEL(編譯:洪連輝、劉立基、魏榮君), “Introduction to solid state physics(固態物理學導論) ”,303頁 (2002)。
[59] E. Hecht,“Optics”,Addision Wesley,113~125頁 (2002) .
[60] H. Raether,“Surface Plasmons on Smooth and Rough Surfaces and on Gratings, ” Springer-Verlag, pp.7-15 (1988).
[61] 許峰銘,“表面電漿共振影像系統於DNA微陣列雜交探測”,國立中央大學機械工程研究所碩士論文,中華民國九十一年六月。
[62] Z. Yingying, L. Jiancheng, Y. Cheng, and L. Zhenhua, “Determination of effective complex refractive index of a turbid liquid with surface plasmon resonance phase detection,” Appl. Opt. Vol. 48, No. 7, pp.1262-1267 (2009).
[63] 耿繼業、何建娃,“幾何與物理光電實驗”,儒林出版社,(2001)。
[64] 紀國鐘、鄭晃忠,“液晶顯示器技術手冊”,台灣電子材料與元件協會出版,(2004)。
[65] D. Malacara, Optical Shop Testing, Wiley, (2007).
[66] J. C. Wyant, Phase-Shifting Interferferometry, http://www.optics.arizona.edu/jcwyant/Optics513/ChapterNotes/Chapter05/3.PrintedVersionPhaseShiftingInterferometry.pdf (1998).
[67] P. Hariharan, B. F. Oreb, and Tomoaki Eiju, “Digital phase-shifting interferometry: a simple error-compensating phase calculation algorithm,” Appl. Opt., vol. 26, no. 13, 2504-2506 (1987).
[68] 陳怡君,“全域波傳量測系統之理論與實驗:以穩頻雙共振腔脈衝雷射為電子斑點干涉及全像記錄/重建光源之架構開發”,國立台灣大學應用力學研究所碩士論文,中華民國八十九年七月。
[69] N. Brock, J. Hayes, B. Kimbrough, J. Millerd, M. North-Morris, M. Novak and J. C. Wyant, “Dynamic Interferometry,” Proceedings of SPIE Vol. 5875 (SPIE, Bellingham, WA), page 58750F-1, 2005.
[70] J. W. Goodman, Introduction to Fourier Optics, The McGraw-Hill Companies, Inc, pp.63-89, (2002).
[71] H. Schreiber and J. Schwider, “Lateral shearing interferometer based on two Ronchi phase gratings in series,” Appl.Opt. 36, 5321-5324 (1997).
[72] E. Garbusi, C. Pruss, and W. Osten, “Single frame interferogram evaluation,” Appl. Opt. Vol. 47, No. 12, pp.2046-2052 (2008).
[73] www.autolab-instrument.com
指導教授 李正中、陳怡君
(Cheng-chung Lee、Yi-chun Chen)
審核日期 2009-7-21
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