Skip navigation

DSpace

機構典藏 DSpace 系統致力於保存各式數位資料(如:文字、圖片、PDF)並使其易於取用。

點此認識 DSpace
DSpace logo
English
中文
  • 瀏覽論文
    • 校院系所
    • 出版年
    • 作者
    • 標題
    • 關鍵字
    • 指導教授
  • 搜尋 TDR
  • 授權 Q&A
    • 我的頁面
    • 接受 E-mail 通知
    • 編輯個人資料
  1. NTU Theses and Dissertations Repository
  2. 電機資訊學院
  3. 光電工程學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/51669
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor孫啟光(Chi-Kuang Sun)
dc.contributor.authorChien-Ming Leeen
dc.contributor.author李健銘zh_TW
dc.date.accessioned2021-06-15T13:43:47Z-
dc.date.available2018-02-02
dc.date.copyright2016-02-02
dc.date.issued2015
dc.date.submitted2015-12-17
dc.identifier.citation[1] Y.-H. Cheng 'High-speed Broadband Third Harmonic Generation Microscopy System,' Master Degree, Graduate Institute of Photonics and Optoelectronics, National Taiwan University, 2013.
[2] G. S. He and S. H. Liu, Physics of Nonlinear Optics, First ed. River Edge, N.J.: World Scientific, 1999.
[3] G. H. C. New and J. F. Ward, 'Optical Third-Harmonic Generation in Gases,' Physical Review Letters, vol. 19, pp. 556-559, 1967.
[4] R. W. Terhune, P. D. Maker, and C. M. Savage, 'Optical Harmonic Generation in Calcite,' Physical Review Letters, vol. 8, pp. 404-406, 1962.
[5] P. D. Maker and R. W. Terhune, 'Study of Optical Effects Due to an Induced Polarization Third Order in the Electric Field Strength,' Physical Review, vol. 137, pp. A801-A818, 1965.
[6] M. G. Payne and W. R. Garrett, 'Theory of the effect of third-harmonic generation on three-photon resonantly enhanced multiphoton ionization in focused beams,' Physical Review A, vol. 28, pp. 3409-3429, 1983.
[7] G. Veres, S. Matsumoto, Y. Nabekawa, and K. Midorikawa, 'Enhancement of third-harmonic generation in absorbing media,' Applied Physics Letters, vol. 81, pp. 3714-3716, 2002.
[8] C. F. Chang, C. H. Yu, and C. K. Sun, 'Multi-photon resonance enhancement of third harmonic generation in human oxyhemoglobin and deoxyhemoglobin,' Journal of Biophotonics, vol. 3, pp. 678-85, 2010.
[9] S.-Y. Chen, S.-U. Chen, H.-Y. Wu, W.-J. Lee, Y.-H. Liao, and C.-K. Sun, 'In Vivo Virtual Biopsy of Human Skin by Using Noninvasive Higher Harmonic Generation Microscopy,' Selected Topics in IEEE Journal of Quantum Electronics, vol. 16, pp. 478-492, 2010.
[10] C.-H. Yu, S.-P. Tai, C.-T. Kung, W.-J. Lee, Y.-F. Chan, H.-L. Liu, et al., 'Molecular third-harmonic-generation microscopy through resonance enhancement with absorbing dye,' Optics Letters, vol. 33, pp. 387-389, 2008.
[11] M.-R. Tsai, C.-Y. Lin, Y.-H. Liao, and C.-K. Sun, 'Applying tattoo dye as a third-harmonic generation contrast agent for in vivo optical virtual biopsy of human skin,' Journal of Biomedical Optics, vol. 18, pp. 026012-026012, 2013.
[12] S. Akhmanov, A. Chirkin, K. Drabovich, A. Kovrigin, R. Khokhlov, and A. Sukhorukov, 'Nonstationary nonlinear optical effects and ultrashort light pulse formation,' IEEE Journal of Quantum Electronics, vol. 4, pp. 598-605, 1968.
[13] R. W. Boyd, 'Nonlinear Optics,' E. 1.6.11, Third ed, Burlington, MA: Academic Press, p. 58, 2008.
[14] Y. Murti, C. Vijayan, Y. Murti, and C. Vijayan, 'A Phenomenological View of Nonlinear Optics,' in Essentials of Nonlinear Optics, ed Chichester, UK: John Wiley & Sons, Ltd, pp. 11-28, 2014.
[15] M. Schubert and B. Wilhelmi, Nonlinear optics and quantum electronics, First ed.: Wiley-Interscience, 1986.
[16] K. Yazdanbakhsh, C. Lomas-Francis, and M. E. Reid, 'Blood groups and diseases associated with inherited abnormalities of the red blood cell membrane,' Transfusion Medicine Reviews, vol. 14, pp. 364-374, 2000.
[17] E. Fahy, S. Subramaniam, R. C. Murphy, M. Nishijima, C. R. H. Raetz, T. Shimizu, et al., 'Update of the LIPID MAPS comprehensive classification system for lipids,' Journal of Lipid Research, vol. 50, pp. S9-S14, 2009.
[18] R. B. Miles and S. E. Harris, 'Optical third-harmonic generation in alkali metal vapors,' Quantum Electronics, IEEE Journal of, vol. 9, pp. 470-484, 1973.
[19] R. W. Boyd, Nonlinear Optics, Third ed. Burlington, MA: Academic Press, 2008.
[20] J. A. Armstrong, N. Bloembergen, J. Ducuing, and P. S. Pershan, 'Interactions between Light Waves in a Nonlinear Dielectric,' Physical Review, vol. 127, pp. 1918-1939, 1962.
[21] Y. Prior, 'A complete expression for the third-order susceptibility (χ(3)) - Perturbative and diagrammatic approaches,' IEEE Journal of Quantum Electronics, vol. 20, pp. 37-42, 1984.
[22] Y. R. Shen, The Principles of Nonlinear Optics, reprint ed.: Wiley-Interscience, 2003.
[23] H. A. Haus, Waves and fields in optoelectronics. Englewood Cliffs, NJ: Prentice Hall Inc., 1984.
[24] N. Bloembergen, H. Lotem, and R. T. Lynch, Jr., 'Lineshapes in Coherent Resonant Raman Scattering,' Indian Journal of Pure and Applied Physics, vol. 16, pp. 151-158, 1978.
[25] N. Bloembergen, Encounters in nonlinear optics : selected papers of Nicolaas Bloembergen, with commentary vol. 16. River Edge, N.J.: World Scientific, 1996.
[26] G. B. Arfken, Mathematical methods for physicists, 3 ed. New York: Academic Press, 1985.
[27] R. W. Hellwarth, 'Third-order optical susceptibilities of liquids and solids,' Progress in Quantum Electronics, vol. 5, pp. 1-68, 1977.
[28] S. Mukamel and R. F. Loring, 'Nonlinear response function for time-domain and frequency-domain four-wave mixing,' Journal of the Optical Society of America B, vol. 3, pp. 595-606, 1986.
[29] H. Scheingraber, H. Puell, and C. R. Vidal, 'Quantitative analysis of resonant third-harmonic generation in strontium,' Physical Review A, vol. 18, pp. 2585-2591, 1978.
[30] C. K. Sun. (2015, February). Nonlinear optics, lecture note [PDF file]. Available: http://ufo.ee.ntu.edu.tw/courses.html
[31] P. M. Woodward and I. L. Davies, 'Information theory and inverse probability in telecommunication,' Proceedings of the IEEE - Part III: Radio and Communication Engineering, vol. 99, pp. 37-44, 1952.
[32] H. Curtis and N. S. Barnes, 'Biology of cells,' in Biology, Fifth ed New York: Worth Publishers, p. 104, 1989.
[33] R. Hine, 'Membrane,' in The Facts on File Dictionary of Biology, Third ed New York: Checkmark Books, p. 198, 1999.
[34] V. T. Athavale and S. K. K. Jatkar, 'Refractive dispersion of oils and fats: Part I. Dispersion of ghee and vegetable oils,' Journal of the Indian Institute of Science, vol. 21, pp. 15-25, 1938.
[35] H. A. Haus, J. G. Fujimoto, and E. P. Ippen, 'Structures for additive pulse mode locking,' Journal of the Optical Society of America B, vol. 8, pp. 2068-2076, 1991.
[36] S. Subramaniam, E. Fahy, S. Gupta, M. Sud, R. W. Byrnes, D. Cotter, et al., 'Bioinformatics and Systems Biology of the Lipidome,' Chemical Reviews, vol. 111, pp. 6452-6490, 2011.
[37] E. Hecht, 'The Fabry-Perot Interferometer,' in Optics, A. Black, Ed., Fourth, International ed San Francisco, CA: Addison Wesley, p. 424, 2002.
[38] R. L. Fork, O. E. Martinez, and J. P. Gordon, 'Negative dispersion using pairs of prisms,' Optics Letters, vol. 9, pp. 150-152, 1984.
[39] O. E. Martinez, J. P. Gordon, and R. L. Fork, 'Negative group-velocity dispersion using refraction,' Journal of the Optical Society of America A, vol. 1, pp. 1003-1006, 1984.
[40] E. Treacy, 'Optical pulse compression with diffraction gratings,' IEEE Journal of Quantum Electronics, vol. 5, pp. 454-458, 1969.
[41] P. Vöhringer, D. C. Arnett, R. A. Westervelt, M. J. Feldstein, and N. F. Scherer, 'Optical dephasing on femtosecond time scales: Direct measurement and calculation from solvent spectral densities,' The Journal of Chemical Physics, vol. 102, pp. 4027-4036, 1995.
[42] A. Laubereau and W. Kaiser, '3 - Picosecond Investigations of Dynamic Processes in Polyatomic Molecules in Liquids,' in Chemical and Biochemical Applications of Lasers. vol. 2, C. B. Moore, Ed., Fifth ed New York: Academic Press, pp. 87-143, 1977.
[43] E. E. Serebryannikov, A. J. Verhoef, A. Mitrofanov, A. Baltuška, and A. M. Zheltikov, 'Signatures of attosecond electron tunneling dynamics in the evolution of intense few-cycle light pulses,' Physical Review A, vol. 80, p. 053809, 2009.
[44] R. Trebino, Frequency-Resolved Optical Gating: The Measurement of Ultrashort Laser Pulses: The Measurement of Ultrashort Laser Pulses, First ed. New York: Springer US, 2000.
[45] C. Iaconis and I. A. Walmsley, 'Spectral phase interferometry for direct electric-field reconstruction of ultrashort optical pulses,' Optics Letters, vol. 23, pp. 792-794, 1998.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/51669-
dc.description.abstract三倍頻顯微術奠基於發展已久之非線性生成理論,當光與物質的時間範圍接近時,物質的時間反應函數則不可忽略須一併計算。本論文經由數值模擬計算電場與物質的電極化率的時間函數,模擬實驗上可得之寬頻鉻貴橄欖石雷射光譜與存在生物體內之亞油酸交互作用後之三倍頻頻譜,在此模型中我們可知有六項變因會使頻譜的形狀與強度皆有所改變,分別是入射光的脈衝寬度、波包形狀、二階及三階色散、物質的相位緩和時間常數、共振對非共振比例以及共振波長,在調變不同變因時,我們以無共振所生成的頻譜當作強度基準,配合模擬計算得知三倍頻頻譜以及亞油酸共振項所產生的三倍頻頻譜,當我們定義亞油酸共振所產生的三倍頻比雷射產生的三倍頻大時,可以使得共振項在頻譜上被解析出來,如此我們可以得知此六項變因的可接受範圍,以實現頻譜解析三倍頻顯微技術。zh_TW
dc.description.abstractBy computing the response function of the electric field and the nonlinear susceptibility, I build up a simulation model for the numerical study of third harmonic generation microscopy based on the non-instantaneous third harmonic generation process for the case the response times are comparable. Based on the IR spectrum of a broadened Cr:forsterite laser and the absorption spectrum of a possible contrast agent, linoleic acid, we found six parameters including field pulse-width, envelope form, second-/third-order dispersions, de-phasing times, resonant to non-resonant ratios, and resonant wavelengths that could affect the response function, thus would change the resulting third harmonic generation (3HG) in both intensity and shape spectrally. Since we are aimed at identifying the molecular resonance in 3HG spectrum, the ratio of the intensity at one-third of medium resonant peak over the intensity at one-third of laser peak were calculated. By finding the range the intensity ratio is larger than 1, we could obtain the acceptable range of the parameters for resolving the spectral characteristics of resonant components which makes possible the spectrally-resolved 3HG microscopy.en
dc.description.provenanceMade available in DSpace on 2021-06-15T13:43:47Z (GMT). No. of bitstreams: 1
ntu-104-R01941070-1.pdf: 11390559 bytes, checksum: cb6c5ea2b1c6cbfcbcec9b9c2bea9d2e (MD5)
Previous issue date: 2015
en
dc.description.tableofcontents致謝 i
摘要 ii
ABSTRACT iii
CONTENTS iv
CHAPTER 1 INTRODUCTION 1
1-1. Thesis Overview 1
1-2. Third Harmonic Generation Microscopy 2
1-2.1. Resonant enhancement in susceptibility 2
1-2.2. Response time of the resonant susceptibility 4
CHAPTER 2 THEORY 7
2-1. Material Susceptibility 7
2-1.1. Absorption from 1st susceptibility 7
2-1.2. Resonant 3rd order susceptibility 8
2-1.3. Total 3rd order susceptibility 12
2-2. Third Harmonic Generation 14
2-2.1. Nonlinear polarization in time domain 14
2-2.2. Third harmonic generation intensity 17
2-2.3. Phase matching condition 18
2-2.4. Additive of second-/third-order dispersions 20
CHAPTER 3 SIMULATION MODEL 22
3-1. Model Flow 22
3-2. Parameters Setting 24
3-2.1. A Gaussian and an experimental waveform 24
3-2.2. Selection of linoleic acid 26
CHAPTER 4 RESULTS AND DISCUSSIONS 29
4-1. Spectral Responses of Input Electric Filed 29
4-1.1. Pulse width varying 30
4-1.2. Group delay dispersion 35
4-1.3. Third-order dispersion 43
4-2. Spectral Responses of Susceptibility 49
4-2.1. De-phasing time 49
4-2.2. Resonant to non-resonance ratio 55
4-2.3. Resonant wavelength 61
CHAPTER 5 CONCLUSIONS AND SUGGESTIONS 68
REFERENCE 72
APPENDIX A 76
dc.language.isoen
dc.subject頻譜解析zh_TW
dc.subject共振電極化率zh_TW
dc.subject非瞬時非線性極化計算zh_TW
dc.subject時間反應函數zh_TW
dc.subject三倍頻顯微術zh_TW
dc.subject數值模擬zh_TW
dc.subjectResonant Susceptibilityen
dc.subjectNon-instantaneous Polarizationen
dc.subjectThird Harmonic Generation Microscopyen
dc.subjectNumerical Studyen
dc.subjectTemporal Response Functionen
dc.subjectSpectrally-resolveden
dc.title頻譜解析三倍頻顯微術之模擬研究zh_TW
dc.titleNumerical Study of Spectrally-resolved Third Harmonic Generation Microscopyen
dc.typeThesis
dc.date.schoolyear104-1
dc.description.degree碩士
dc.contributor.oralexamcommittee石明豐(Ming-Feng Shih),朱士維(Shi-Wei Chu)
dc.subject.keyword非瞬時非線性極化計算,三倍頻顯微術,數值模擬,時間反應函數,頻譜解析,共振電極化率,zh_TW
dc.subject.keywordNon-instantaneous Polarization,Third Harmonic Generation Microscopy,Numerical Study,Temporal Response Function,Spectrally-resolved,Resonant Susceptibility,en
dc.relation.page76
dc.rights.note有償授權
dc.date.accepted2015-12-17
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-104-1.pdf
  未授權公開取用
11.12 MBAdobe PDF
顯示文件簡單紀錄


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。

社群連結
聯絡資訊
10617臺北市大安區羅斯福路四段1號
No.1 Sec.4, Roosevelt Rd., Taipei, Taiwan, R.O.C. 106
Tel: (02)33662353
Email: ntuetds@ntu.edu.tw
意見箱
相關連結
館藏目錄
國內圖書館整合查詢 MetaCat
臺大學術典藏 NTU Scholars
臺大圖書館數位典藏館
本站聲明
© NTU Library All Rights Reserved