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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 應用力學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/95482
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor郭茂坤zh_TW
dc.contributor.advisorMao-Kuen Kuoen
dc.contributor.author何昀澤zh_TW
dc.contributor.authorYun-Tse Hoen
dc.date.accessioned2024-09-10T16:18:04Z-
dc.date.available2024-09-11-
dc.date.copyright2024-09-10-
dc.date.issued2024-
dc.date.submitted2024-08-06-
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3 A. Milewska, V. Zivanovic, V. Merk, U. B. Arnalds, Ó. E. Sigurjónsson, J. Kneipp, and K. Leosson, "Gold Nanoisland Substrates for Sers Characterization of Cultured Cells," Biomedical Optics Express, 10(12), 6172-6188, 2019.
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5 W. Hou and S. B. Cronin, "A Review of Surface Plasmon Resonance‐Enhanced Photocatalysis," Advanced Functional Materials, 23(13), 1612-1619, 2013.
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13 D. L. Jeanmaire and R. P. Van Duyne, "Surface Raman Spectroelectrochemistry: Part I. Heterocyclic, Aromatic, and Aliphatic Amines Adsorbed on the Anodized Silver Electrode," Journal of electroanalytical chemistry and interfacial electrochemistry, 84(1), 1-20, 1977.
14 J. C. Scaiano, P. Billone, C. M. Gonzalez, L. Marett, M. L. Marin, K. L. McGilvray, and N. Yuan, "Photochemical Routes to Silver and Gold Nanoparticles," Pure and Applied Chemistry, 81(4), 635-647, 2009.
15 N. Jara, N. S. Milán, A. Rahman, L. Mouheb, D. C. Boffito, C. Jeffryes, and S. A. Dahoumane, "Photochemical Synthesis of Gold and Silver Nanoparticles—a Review," Molecules, 26(15), 4585, 2021.
16 K. G. Stamplecoskie and J. C. Scaiano, "Silver as an Example of the Applications of Photochemistry to the Synthesis and Uses of Nanomaterials," Photochemistry and photobiology, 88(4), 762-768, 2012.
17 S. Dai, Q. Li, G. Liu, H. Yang, Y. Yang, D. Zhao, W. Wang, and M. Qiu, "Laser-Induced Single Point Nanowelding of Silver Nanowires," Applied Physics Letters, 108(12),2016.
18 N. Sun, K. Yao, C. Wang, C. Zhao, W. Lu, S. Zhao, H. Wang, and J. Wang, "Synthesis of Various Gold Hierarchical Architectures Assisted by Functionalized Ionic Liquids in Aqueous Solutions and Their Efficient Sers Responses," Journal of colloid and interface science, 531 194-203, 2018.
19 X. Sun and H. Li, "Gold Nanoisland Arrays by Repeated Deposition and Post-Deposition Annealing for Surface-Enhanced Raman Spectroscopy," Nanotechnology, 24(35), 355706, 2013.
20 J. Kim, C.-Y. Lin, W. Xing, M. L. Mecartney, E. O. Potma, and R. M. Penner, "Laser Annealing of Nanocrystalline Gold Nanowires," ACS Applied Materials & Interfaces, 5(15), 6808-6814, 2013.
21 B. Chen, M. Mokume, C. Liu, and K. Hayashi, "Structure and Localized Surface Plasmon Tuning of Sputtered Au Nano-Islands through Thermal Annealing," Vacuum, 110 94-101, 2014.
22 H. Yoshikawa, A. Hironou, Z. Shen, and E. Tamiya, "Versatile Micropatterning of Plasmonic Nanostructures by Visible Light Induced Electroless Silver Plating on Gold Nanoseeds," ACS Applied Materials & Interfaces, 8(36), 23932-23940, 2016.
23 L. Tong, V. D. Miljkovic, and M. Kall, "Alignment, Rotation, and Spinning of Single Plasmonic Nanoparticles and Nanowires Using Polarization Dependent Optical Forces," Nano letters, 10(1), 268-273, 2010.
24 Y. E. Lee, K. H. Fung, D. Jin, and N. X. Fang, "Optical Torque from Enhanced Scattering by Multipolar Plasmonic Resonance," Nanophotonics, 3(6), 343-350, 2014.
25 K. M. Mayer and J. H. Hafner, "Localized Surface Plasmon Resonance Sensors," Chemical reviews, 111(6), 3828-3857, 2011.
26 S. K. Ghosh and T. Pal, "Interparticle Coupling Effect on the Surface Plasmon Resonance of Gold Nanoparticles: From Theory to Applications," Chemical reviews, 107(11), 4797-4862, 2007.
27 J. Langer, D. Jimenez de Aberasturi, J. Aizpurua, R. A. Alvarez-Puebla, B. Auguié, J. J. Baumberg, G. C. Bazan, S. E. Bell, A. Boisen, and A. G. Brolo, "Present and Future of Surface-Enhanced Raman Scattering," ACS nano, 14(1), 28-117, 2019.
28 R. Panneerselvam, G.-K. Liu, Y.-H. Wang, J.-Y. Liu, S.-Y. Ding, J.-F. Li, D.-Y. Wu, and Z.-Q. Tian, "Surface-Enhanced Raman Spectroscopy: Bottlenecks and Future Directions," Chemical communications, 54(1), 10-25, 2018.
29 S. Y. Ding, X. M. Zhang, B. Ren, and Z. Q. Tian, "Surface‐Enhanced Raman Spectroscopy (Sers): General Introduction," Encyclopedia of Analytical Chemistry: Applications, Theory and Instrumentation, 1-34, 2006.
30 A. Nilghaz, S. Mahdi Mousavi, A. Amiri, J. Tian, R. Cao, and X. Wang, "Surface-Enhanced Raman Spectroscopy Substrates for Food Safety and Quality Analysis," Journal of agricultural and food chemistry, 70(18), 5463-5476, 2022.
31 Z.-Y. Deng, K.-L. Chen, and C.-H. Wu, "Improving the Sers Signals of Biomolecules Using a Stacked Biochip Containing Fe2o3/Au Nanoparticles and a Dc Magnetic Field," Scientific Reports, 9(1), 9566, 2019.
32 J.-W. Liaw, W.-C. Lin, and M.-K. Kuo, "Wavelength-Dependent Plasmon-Mediated Coalescence of Two Gold Nanorods," Scientific Reports, 7(1), 46095, 2017.
33 J.-W. Liaw, H.-Y. Chao, C.-W. Huang, and M.-K. Kuo, "Light-Driven Self-Assembly of Hetero-Shaped Gold Nanorods," Applied Physics A, 124 1-11, 2018.
34 F. J. Rodríguez-Fortuño, N. Engheta, A. Martínez, and A. V. Zayats, "Lateral Forces on Circularly Polarizable Particles near a Surface," Nature communications, 6(1), 8799, 2015.
35 B. Tangeysh, K. Moore Tibbetts, J. H. Odhner, B. B. Wayland, and R. J. Levis, "Triangular Gold Nanoplate Growth by Oriented Attachment of Au Seeds Generated by Strong Field Laser Reduction," Nano Letters, 15(5), 3377-3382, 2015.
36 Y. Zhai, J. S. DuChene, Y.-C. Wang, J. Qiu, A. C. Johnston-Peck, B. You, W. Guo, B. DiCiaccio, K. Qian, and E. W. Zhao, "Polyvinylpyrrolidone-Induced Anisotropic Growth of Gold Nanoprisms in Plasmon-Driven Synthesis," Nature Materials, 15(8), 889-895, 2016.
37 B. Wu, D. Liu, S. Mubeen, T. T. Chuong, M. Moskovits, and G. D. Stucky, "Anisotropic Growth of Tio2 onto Gold Nanorods for Plasmon-Enhanced Hydrogen Production from Water Reduction," Journal of the American Chemical Society, 138(4), 1114-1117, 2016.
38 H. Tanimoto, K. Hashiguchi, and S. Ohmura, "Growth Inhibition of Hexagonal Silver Nanoplates by Localized Surface Plasmon Resonance," The Journal of Physical Chemistry C, 119(33), 19318-19325, 2015.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/95482-
dc.description.abstract本研究以圓偏振雷射光製作具掌性(chiral)之銀奈米結構,在顯微鏡系統中將雷射光透過圓偏振片,並聚焦照射於硝酸銀及抗壞血酸水溶液,利用溶液中已還原之銀原子團誘發表面電漿子效應產生熱電子促進光化學還原反應,同時電磁波使銀原子團間產生光力吸引驅動銀原子簇自組裝,並且圓形極化促使銀原子簇受到光力矩使其成螺旋分布,進而生成具有掌性的奈米立體結構,並將此結構應用於表面增強拉曼光譜(SERS)測量。實驗過程皆在室溫(25°C)及一大氣壓下進行,透過調整溶液前置反應時間、雷射光的功率、照射時間及波長等參數控制銀奈米結構的型貌。FE-SEM影像顯示,在照射前溶液前置反應5分鐘後進行照射能產生較細緻的奈米立體結構。若增加前置反應時間則會因為純化學還原反應已經趨於完備,光化學還原反應介入的影響降低,進而影響微結構型貌的複雜性,降低其對SERS的效能。在SERS測量上,本研究使用不同濃度的羅丹明6G(Rhodamine 6G, R6G)做為檢測樣本,實驗結果顯示此三維銀結構可測量不同濃度(10-6 M至10-10 M)的R6G。
實驗證明圓偏振雷射光驅動光化學還原反應可生成具掌性的三維銀奈米結構,除可提升SERS靈敏度外,其圓二色性(circular dichroism, CD)更可以應用於檢測具掌性的L或D型分子。
zh_TW
dc.description.abstractThis study demonstrates the fabrication of chiral silver nanostructures using circularly polarized laser light. The laser, passed through a circular polarizer and focused in a microscope system, irradiates a silver nitrate and ascorbic acid solution. The plasmonic effect of the reduced atomic clusters in the solution generates hot electrons, which further drive the photochemical reduction process. Simultaneously, the optical forces of the circularly polarized light drive the self-assembly of silver atom clusters, and the optical torque causes them to distribute helically, forming chiral three-dimensional nanostructures. These structures are applied for surface-enhanced Raman spectroscopy (SERS) measurements. The experiments are conducted at room temperature (25°C) and one atmosphere pressure. The morphology of the silver nanostructures is controlled by adjusting the pre-reaction time of the solution, laser power, irradiation time, and wavelength. FE-SEM images show that irradiating the solution after a 5-minute pre-reaction produces finer nanostructures. Increasing the pre-reaction time reduces the influence of photochemical reduction due to the completion of the pure chemical reduction reaction, affecting the complexity of the microstructure and decreasing its SERS efficiency. For SERS measurements, different concentrations of R6G (Rhodamine 6G) are used as test samples. The results indicate that these three-dimensional silver structures can detect R6G at concentrations ranging from 10-6 M to 10-10 M.
The experiment demonstrates that circularly polarized laser-driven photochemical reduction can produce chiral three-dimensional silver nanostructures, enhancing SERS sensitivity. Additionally, their circular dichroism (CD) can be applied to detect chiral L- or D-type molecules.
en
dc.description.provenanceSubmitted by admin ntu (admin@lib.ntu.edu.tw) on 2024-09-10T16:18:04Z
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dc.description.provenanceMade available in DSpace on 2024-09-10T16:18:04Z (GMT). No. of bitstreams: 0en
dc.description.tableofcontents口試委員會審定書 i
致謝 ii
摘要 iii
Abstract iv
目次 vi
圖次 viii
第1章 緒論 1
1.1 前言 1
1.2 文獻回顧 2
1.3 動機與目的 10
第2章 實驗原理 11
2.1 表面電漿子共振 11
2.2 表面增強拉曼光譜 12
2.3 高斯光束 13
2.4 圓偏振光的光力與光力矩 15
2.5 光化學還原 17
第3章 實驗方法 18
3.1 實驗材料 19
3.2 實驗儀器與元件 19
3.3 實驗架構與步驟 20
3.3.1 矽基板前處理 21
3.3.2 具掌性奈米銀結構的光化學還原反應 22
3.3.3 表面增強拉曼光譜(SERS) 23
第4章 實驗結果與討論 24
4.1 圓偏振光化學還原掌性結構 24
4.2 先行反應製程與SERS效能 29
4.2.1 無先行反應時間下每點照射時間及功率對結構的影響 29
4.2.2 光源偏振方式及使用先行反應製程對結構的影響 39
4.2.3 先行反應製程對SERS效能的影響 45
第5章 結論 58
5.1 結論 58
5.2 未來展望 60
參考文獻 61
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dc.language.isozh_TW-
dc.subject光力矩zh_TW
dc.subject光力zh_TW
dc.subject掌性結構zh_TW
dc.subject銀奈米結構zh_TW
dc.subject表面電漿共振zh_TW
dc.subject光化學還原zh_TW
dc.subject表面增強拉曼光譜zh_TW
dc.subject圓偏振光zh_TW
dc.subjectoptical torqueen
dc.subjectCircularly polarized lighten
dc.subjectphotochemical reductionen
dc.subjectsilver nanostructuresen
dc.subjectchiral structuresen
dc.subjectoptical forceen
dc.subjectsurface plasmon resonanceen
dc.subjectsurface-enhanced Raman spectroscopyen
dc.title圓偏振雷射光化學還原製作銀掌性奈米結構及其於表面增強拉曼光譜測量的應用zh_TW
dc.titleCircularly Polarized Laser-Driven Photochemical Reduction for Fabricating Chiral Silver Nanostructures and the Application in Surface-Enhanced Raman Spectroscopy Measurementsen
dc.typeThesis-
dc.date.schoolyear112-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee藍永強;廖駿偉zh_TW
dc.contributor.oralexamcommitteeYung-Chiang Lan;Juinn-Woei Liawen
dc.subject.keyword圓偏振光,光化學還原,銀奈米結構,掌性結構,光力,光力矩,表面電漿共振,表面增強拉曼光譜,zh_TW
dc.subject.keywordCircularly polarized light,photochemical reduction,silver nanostructures,chiral structures,optical force,optical torque,surface plasmon resonance,surface-enhanced Raman spectroscopy,en
dc.relation.page63-
dc.identifier.doi10.6342/NTU202403693-
dc.rights.note同意授權(全球公開)-
dc.date.accepted2024-08-10-
dc.contributor.author-college工學院-
dc.contributor.author-dept應用力學研究所-
dc.date.embargo-lift2029-08-13-
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