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  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/123456789/17665
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor曾雪峰(Snow H. Tseng)
dc.contributor.authorLiang-Yu Huangen
dc.contributor.author黃亮瑜zh_TW
dc.date.accessioned2021-06-08T00:29:12Z-
dc.date.copyright2020-08-07
dc.date.issued2020
dc.date.submitted2020-08-06
dc.identifier.citation[1] T. Caro, M. C. Stoddard, and D. Stuart-Fox, 'Animal coloration research: why it matters,' Philos Trans R Soc Lond B Biol Sci 372(1724), 20160333 (2017).
[2] G. A. F. Hendry, 'Natural pigments in biology,' in Natural Food Colorants G. A. F. Hendry, and J. D. Houghton, Eds., pp. 1-39, Springer US, Boston, MA (1996).
[3] M. Kolle, and U. Steiner, 'Structural Color in Animals,' in Encyclopedia of Nanotechnology B. Bhushan, Ed., pp. 2514-2527, Springer Netherlands, Dordrecht (2012).
[4] P. Vukusic, and D. G. Stavenga, 'Physical methods for investigating structural colours in biological systems,' Journal of the Royal Society, Interface 6 Suppl 2(Suppl 2), S133-S148 (2009).
[5] R. C. Duarte, A. A. V. Flores, and M. Stevens, 'Camouflage through colour change: mechanisms, adaptive value and ecological significance,' Philos Trans R Soc Lond B Biol Sci 372(1724), 20160342 (2017).
[6] T. F. Anderson, and A. G. Richards, 'An Electron Microscope Study of Some Structural Colors of Insects,' Journal of Applied Physics 13(12), 748-758 (1942).
[7] A. Taflove, and S. Hagness, Computational Electrodynamics: The Finite-Difference Time-Domain Method, 3rd edition (2005).
[8] K. Pearson, 'Method of Moments and Method of Maximum Likelihood,' Biometrika 28(1-2), 34-47 (1936).
[9] Y. R. Rashid, 'Analysis of axisymmetric composite structures by the finite element method,' Nuclear Engineering and Design 3(1), 163-182 (1966).
[10] Y. Kane, 'Numerical solution of initial boundary value problems involving maxwell's equations in isotropic media,' IEEE Transactions on Antennas and Propagation 14(3), 302-307 (1966).
[11] 洪于晟, '以時域有限差分法分析軟性顯示器的光學性質,' in 臺灣大學光電工程學研究所學位論文, pp. 1-62, 國立臺灣大學 (2009).
[12] T. T. Zygiridis, 'A Short Review of FDTD-Based Methods for Uncertainty Quantification in Computational Electromagnetics,' Mathematical Problems in Engineering 2017(9247978 (2017).
[13] G. Mur, 'Absorbing Boundary Conditions for the Finite-Difference Approximation of the Time-Domain Electromagnetic-Field Equations,' IEEE Transactions on Electromagnetic Compatibility EMC-23(4), 377-382 (1981).
[14] Z.-F. LIAO et al., 'A TRANSMITTING BOUNDARY FOR TRANSIENT WAVE ANALYSES,' Science in China Series A-Mathematics, Physics, Astronomy Technological Science 27(0253-5831), 1063 (1984).
[15] J.-P. Berenger, 'A perfectly matched layer for the absorption of electromagnetic waves,' Journal of Computational Physics 114(2), 185-200 (1994).
[16] C. W. Mason, 'Structural Colors in Insects. III,' The Journal of Physical Chemistry 31(12), 1856-1872 (1927).
[17] A. Elbaz et al., 'Chitin-Based Anisotropic Nanostructures of Butterfly Wings for Regulating Cells Orientation,' Polymers (Basel) 9(9), 386 (2017).
[18] S. Kinoshita et al., 'Photophysics of Structural Color in the Morpho Butterflies,' FORMA 17(2), 103-121 (2002).
[19] W. J. Crookes et al., 'Reflectins: The Unusual Proteins of Squid Reflective Tissues,' Science 303(5655), 235 (2004).
[20] A. R. Tao et al., 'The role of protein assembly in dynamically tunable bio-optical tissues,' Biomaterials 31(5), 793-801 (2010).
[21] M. McFall-Ngai, 'Divining the essence of symbiosis: insights from the squid-vibrio model,' PLoS Biol 12(2), e1001783 (2014).
[22] M. Rassart et al., 'Diffractive hygrochromic effect in the cuticle of the hercules beetle Dynastes hercules,' New Journal of Physics 10(3), (2008).
[23] H. E. Hinton, and G. M. Jarman, 'Physiological colour change in the elytra of the hercules beetle, Dynastes hercules,' Journal of Insect Physiology 19(3), 533-549 (1973).
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/17665-
dc.description.abstract在本研究中,我們使用時域有限差分法(finite-difference time-domain method,FDTD method)針對下列五種生物進行體表色彩的光學性質分析:大藍閃蝶、夏威夷短尾魷魚、赫克力士長戟大兜蟲、蔚藍金龜以及霓虹脂鯉。在建立上述生物體表結構的實驗模型後,我們模擬光線在結構傳播的情形,並分析結構材料特性以及其幾何特徵對體表色彩的影響。考慮的因素包含結構材料的折射率、厚度及排列形式。最後,我們比較模擬結果與真實生物情形的光譜特徵差異,用以分析模擬結構的準確度,使我們建置的模擬結構能提供正確的生物體表色彩資訊。zh_TW
dc.description.abstractIn this research, we employ the finite-difference time-domain (FDTD) simulation technique to analyze the optical characteristics of the following creatures: Morpho butterfly, Hawaiian bobtail squid, Hercules beetle, Cerulean chafer beetle and Neon tetra. We construct the simulation models for these creatures with some assumptions and simplifications so that the main factors which affects the color appearances can be focused. Various parameters of these structure models are studied to decipher the effect on color appearances, including: refractive indices of structure materials, thickness of the structure layer, spacing between layers and the number of layers. Furthermore, the comparisons of creature structures are discussed; research findings help us acquire fundamental coloration mechanisms of these creatures.en
dc.description.provenanceMade available in DSpace on 2021-06-08T00:29:12Z (GMT). No. of bitstreams: 1
U0001-0408202015080300.pdf: 2199534 bytes, checksum: 2b98cfcdfc4e735efe0c00be643e3359 (MD5)
Previous issue date: 2020
en
dc.description.tableofcontents口試委員會審定書……………………………………………………………………#
誌謝 i
中文摘要 ii
ABSTRACT iii
目錄 iv
圖目錄 vi
表目錄 viii
第一章 緒論 1
1.1 生物表面結構光學 1
1.2 研究動機與目標 2
1.2.1 研究動機 2
1.2.2 研究目標 3
1.3 本文內容 3
第二章 時域有限差分法 4
2.1 FDTD演算法 4
2.2 Courant 條件 10
2.3 總場/散射場(Total Field/Scattered Field) 11
2.4 完美吸收邊界條件(Perfectly Matched Layer Absorbing Boundary Condition) 12
第三章 生物體表光學結構模型建置 14
3.1 生物體表光學結構分析 14
3.1.1 大藍閃蝶(Morpho butterfly) 14
3.1.2 夏威夷短尾魷魚(Hawaiian bobtail squid) 16
3.1.3 赫克力士長戟大兜蟲(Hercules beetle) 18
3.1.4 蔚藍金龜(Cerulean chafer beetle) 20
3.1.5 霓虹脂鯉(Neon tetra) 22
3.2 生物體表光學結構FDTD模擬模型 23
3.2.1 基礎模型建置 23
3.2.2 個別生物結構模型參數設置 25
第四章 模擬結果分析 29
4.1 大藍閃蝶(Morpho butterfly)結果分析 29
4.2 夏威夷短尾魷魚(Hawaiian bobtail squid)結果分析 32
4.3 赫克力士長戟大兜蟲(Hercules beetle)結果分析 37
4.4 蔚藍金龜(Cerulean chafer beetle)結果分析 41
4.5 霓虹脂鯉(Neon tetra) 結果分析 45
4.6 生物體表色彩光學特徵 47
第五章 結論與展望 48
5.1 結論 48
5.2 展望 49
參考文獻 50
dc.language.isozh-TW
dc.title時域有限差分法模擬分析生物體表色彩結構zh_TW
dc.titleFDTD Simulation and Analysis of the Color Appearances from Biological Creaturesen
dc.typeThesis
dc.date.schoolyear108-2
dc.description.degree碩士
dc.contributor.oralexamcommittee宋孔彬(Kung-Bin Sung),駱遠(Yuan Luo)
dc.subject.keyword時域有限差分法( finite-difference time-domain method FDTD method,數值模擬,結構光學,生物體表色彩,生物光子晶體,zh_TW
dc.subject.keywordFDTD method,Numerical simulation,Structural optics,Biological color appearance,Biophotonic,en
dc.relation.page51
dc.identifier.doi10.6342/NTU202002378
dc.rights.note未授權
dc.date.accepted2020-08-06
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
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