| 研究生: |
林佳霈 Jia-Pei Lin |
|---|---|
| 論文名稱: |
相位式侷域表面電漿共振感測器之開發 Development of Phase-Sensitive Localized Surface Plasmon Resonance Sensor |
| 指導教授: |
郭倩丞
Chien-Cheng Kuo |
| 口試委員: | |
| 學位類別: |
碩士 Master |
| 系所名稱: |
理學院 - 光電科學與工程學系 Department of Optics and Photonics |
| 論文出版年: | 2022 |
| 畢業學年度: | 110 |
| 語文別: | 中文 |
| 論文頁數: | 68 |
| 中文關鍵詞: | 生物檢測技術 、白光干涉顯微技術 、侷域表面電漿共振 、白光干涉儀 、金奈米粒子 |
| 外文關鍵詞: | White-Light Scanning Interferometry |
| 相關次數: | 點閱:12 下載:0 |
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本研究利用掃描式白光干涉顯微技術,搭配快速傅立葉轉換法(Fast Fourier Transform, FFT),將時域干涉訊號轉換為頻域資訊,取得二維空間影像之相位頻譜,應用於侷域表面電漿共振效應(Localized Surface Plasmon Resonance, LSPR)感測器之開發,藉由量測相位共振波長,來避免傳統直接量測強度時易受到的環境干擾。
相位頻譜之金奈米粒子,以金奈米粒子的LSPR吸收光譜之特徵峰值位置的共振波長作為識別;LSPR相位分布強度機率圖則用來確認金奈米粒子相位出現機率與各濃度之間差異性,並引入質心演算法(Spectral Centroid Algorithm)來量化此現象。
藉由觀察LSPR 特徵峰值來分析不同濃度之間的變化,所量測濃度之檢測極限(Limit of Detection, LOD)為0.1485%,意即本系統可以偵測到 〖6.5955×10〗^10 〖mL〗^(-1) 個金奈米粒子。這證實了本研究內所開發的白光干涉顯微成像系統之創新技術可用於量測LSPR感測器相位頻譜之開發,實現大範圍且快速量測分析之檢測平台。期望未來可將本研究應用在發展一套精準、可靠、高靈敏度的多重偵測平台,並實現多重偵測之光學感測技術。
In this study, scanning white light interference microscopy with Fast Fourier Transform (FFT) which can convert the time domain interference signal into frequency domain information and obtain the phase spectrum of the two-dimensional spatial image, was applied to the development of a localized surface plasmon resonance (LSPR) sensor. By measuring the phase resonance wavelength, the environmental interference that is susceptible to traditional direct measurement of intensity can be avoided.
The resonance wavelength of the characteristic peak position of the LSPR absorption spectrum of gold nanoparticles is used as the identification and analysis of the phase spectrum. The LSPR phase distribution intensity probability map was used to confirm the phase repeatability and the difference between concentrations of the gold nanoparticles. A spectral centroid algorithm was introduced to quantify this phenomenon.
By observing the characteristic peaks of LSPR to analyze the change between different concentrations, the limit of detection (LOD) of the measured concentration is 0.1485%, which means that 〖6.5955×10〗^10 〖mL〗^(-1) gold nanoparticles can be detected by the system. This result confirms that the innovative technique of the white light interference microscopy imaging system developed in this study can be used to measure the phase spectrum of the LSPR sensor, and also provide a detection platform with high sensitivity and fast speed. It is expected that this research can be applied to develop a set of accurate, reliable and high-sensitivity multiple detection platforms in the future and realize the optical sensing technology of multiple detection.
[1] P. J. Tighe, R. R. Ryder, I. Todd, and L. C. Fairclough, "ELISA in the multiplex era: potentials and pitfalls," PROTEOMICS–Clinical Applications, vol. 9, no. 3-4, pp. 406-422, 2015.
[2] R. L. Rich, "Higher-throughput, label-free, real-time molecular interaction analysis," Analytical biochemistry, vol. 361, pp. 1-6, 2007.
[3] 章嘉明, 李佳瑜, 江昌獄, and 周禮君, "免標定生物感測器," 科儀新知, no. 175, pp. 48-55, 2010.
[4] R. W. Wood, "XLII. On a remarkable case of uneven distribution of light in a diffraction grating spectrum," The London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science, vol. 4, no. 21, pp. 396-402, 1902.
[5] 吳民耀、劉威志, "表面電漿子理論與模擬," 物理雙月刊, vol. 28, 2006.
[6] R. H. Ritchie, "Plasma losses by fast electrons in thin films," Physical review, vol. 106, no. 5, pp. 874, 1957.
[7] 張家瑜、賴英煌, "表面電漿現象及其應用," 科學發展, pp. 66~71, 2019.
[8] K. L. Kelly, E. Coronado, L. L. Zhao, and G. C. Schatz, "The optical properties of metal nanoparticles: the influence of size, shape, and dielectric environment," vol. 107, ed: ACS Publications, 2003, pp. 668-677.
[9] X. Huang and M. A. El-Sayed, "Gold nanoparticles: Optical properties and implementations in cancer diagnosis and photothermal therapy," Journal of advanced research, vol. 1, no. 1, pp. 13-28, 2010.
[10] L. Guo, J. A. Jackman, H.-H. Yang, P. Chen, N.-J. Cho, and D.-H. Kim, "Strategies for enhancing the sensitivity of plasmonic nanosensors," Nano Today, vol. 10, no. 2, pp. 213-239, 2015.
[11] G. J. Nusz et al., "Label-free plasmonic detection of biomolecular binding by a single gold nanorod," Analytical chemistry, vol. 80, no. 4, pp. 984-989, 2008.
[12] J. N. Anker, W. P. Hall, O. Lyandres, N. C. Shah, J. Zhao, and R. P. Van Duyne, "Biosensing with plasmonic nanosensors," Nanoscience and Technology: A Collection of Reviews from Nature Journals, pp. 308-319, 2010.
[13] J. Chen et al., "Optimization and application of reflective LSPR optical fiber biosensors based on silver nanoparticles," Sensors, vol. 15, no. 6, pp. 12205-12217, 2015.
[14] G. Nenninger, P. Tobiška, J. Homola, and S. Yee, "Long-range surface plasmons for high-resolution surface plasmon resonance sensors," Sensors and Actuators B: Chemical, vol. 74, no. 1-3, pp. 145-151, 2001.
[15] W.-Y. Chen, C.-H. Lin, and W.-T. Chen, "Plasmonic phase transition and phase retardation: essential optical characteristics of localized surface plasmon resonance," Nanoscale, vol. 5, no. 20, pp. 9950-9956, 2013.
[16] K. Lodewijks, J. Ryken, W. Van Roy, G. Borghs, L. Lagae, and P. Van Dorpe, "Tuning the Fano resonance between localized and propagating surface plasmon resonances for refractive index sensing applications," Plasmonics, vol. 8, no. 3, pp. 1379-1385, 2013.
[17] R. S. Moirangthem, M. T. Yaseen, P.-K. Wei, J.-Y. Cheng, and Y.-C. Chang, "Enhanced localized plasmonic detections using partially-embedded gold nanoparticles and ellipsometric measurements," Biomedical optics express, vol. 3, no. 5, pp. 899-910, 2012.
[18] R. W. Wood, Physical optics. Macmillan, 1905.
[19] M.-C. Li, D.-S. Wan, and C.-C. Lee, "Application of white-light scanning interferometer on transparent thin-film measurement," Applied Optics, vol. 51, no. 36, pp. 8579-8586, 2012.
[20] M. Roy, I. Cooper, P. Moore, C. J. Sheppard, and P. Hariharan, "White-light interference microscopy: effects of multiple reflections within a surface film," Optics Express, vol. 13, no. 1, pp. 164-170, 2005.
[21] S. S. Chim and G. S. Kino, "Phase measurements using the Mirau correlation microscope," Applied optics, vol. 30, no. 16, pp. 2197-2201, 1991.
[22] J. Niehues, P. Lehmann, and W. Xie, "Low coherent Linnik interferometer optimized for use in nano-measuring machines," Measurement Science and Technology, vol. 23, no. 12, pp. 125002, 2012.
[23] P. Hariharan, Basics of interferometry. Elsevier, 2010.
[24] K. Creath and G. Goldstein, "Dynamic phase imaging and processing of moving biological organisms," in Three-Dimensional and Multidimensional Microscopy: Image Acquisition and Processing XIX, 2012, vol. 8227: SPIE, pp. 106-115.
[25] Y. Surrel, "Phase stepping: a new self-calibrating algorithm," Applied optics, vol. 32, no. 19, pp. 3598-3600, 1993.
[26] J. Schwider, O. R. Falkenstoerfer, H. Schreiber, A. Zoeller, and N. Streibl, "New compensating four-phase algorithm for phase-shift interferometry," Optical Engineering, vol. 32, no. 8, pp. 1883-1885, 1993.
[27] N. Ida and N. Meyendorf, Handbook of advanced nondestructive evaluation. Springer International Publishing Cham, Switzerland, 2019.
[28] A. S. Arcas, L. Jaramillo, N. S. Costa, R. C. S. Allil, and M. M. Werneck, "Localized surface plasmon resonance-based biosensor on gold nanoparticles for Taenia solium detection," Applied Optics, vol. 60, no. 26, pp. 8137-8144, 2021.
[29] S. Farooq, F. Wali, D. M. Zezell, R. E. de Araujo, and D. Rativa, "Optimizing and Quantifying Gold Nanospheres Based on LSPR Label-Free Biosensor for Dengue Diagnosis," Polymers, vol. 14, no. 8, pp. 1592, 2022.
[30] Y. Hong, Y.-M. Huh, D. S. Yoon, and J. Yang, "Nanobiosensors based on localized surface plasmon resonance for biomarker detection," Journal of Nanomaterials, vol. 2012, 2012.
[31] A. J. Haes, W. P. Hall, L. Chang, W. L. Klein, and R. P. Van Duyne, "A localized surface plasmon resonance biosensor: First steps toward an assay for Alzheimer's disease," Nano letters, vol. 4, no. 6, pp. 1029-1034, 2004.
[32] J. Zhao, X. Zhang, C. R. Yonzon, A. J. Haes, and R. P. Van Duyne, "Localized surface plasmon resonance biosensors," 2006.
[33] Y. Hu, Y. Wen, and X. Wang, "Novel method of turbidity compensation for chemical oxygen demand measurements by using UV–vis spectrometry," Sensors and Actuators B: Chemical, vol. 227, pp. 393-398, 2016.
[34] D. Banham, S. Ye, S. Knights, S. M. Stewart, M. Wilson, and F. Garzon, "UV–visible spectroscopy method for screening the chemical stability of potential antioxidants for proton exchange membrane fuel cells," Journal of Power Sources, vol. 281, pp. 238-242, 2015.
[35] O. A. Alsager, S. Kumar, B. Zhu, J. Travas-Sejdic, K. P. McNatty, and J. M. Hodgkiss, "Ultrasensitive colorimetric detection of 17β-estradiol: the effect of shortening DNA aptamer sequences," Analytical chemistry, vol. 87, no. 8, pp. 4201-4209, 2015.
[36] S. A. Khan, J. A. DeGrasse, B. J. Yakes, and T. R. Croley, "Rapid and sensitive detection of cholera toxin using gold nanoparticle-based simple colorimetric and dynamic light scattering assay," Analytica Chimica Acta, vol. 892, pp. 167-174, 2015.
[37] K. A. Willets and R. P. Van Duyne, "Localized surface plasmon resonance spectroscopy and sensing," Annual review of physical chemistry, vol. 58, no. 1, pp. 267-297, 2007.
[38] K. Takemura, "Surface plasmon resonance (SPR)-and localized SPR (LSPR)-based virus sensing systems: Optical vibration of nano-and micro-metallic materials for the development of next-generation virus detection technology," Biosensors, vol. 11, no. 8, pp. 250, 2021.
[39] L. Panariello, A. N. Radhakrishnan, I. Papakonstantinou, I. P. Parkin, and A. Gavriilidis, "Particle Size Evolution during the Synthesis of Gold Nanoparticles Using In Situ Time-Resolved UV–Vis Spectroscopy: An Experimental and Theoretical Study Unravelling the Effect of Adsorbed Gold Precursor Species," The Journal of Physical Chemistry C, vol. 124, no. 50, pp. 27662-27672, 2020.
[40] J. Xavier, S. Vincent, F. Meder, and F. Vollmer, "Advances in optoplasmonic sensors–combining optical nano/microcavities and photonic crystals with plasmonic nanostructures and nanoparticles," Nanophotonics, vol. 7, no. 1, pp. 1-38, 2018.
[41] E. Martinsson, M. A. Otte, M. M. Shahjamali, B. Sepulveda, and D. Aili, "Substrate effect on the refractive index sensitivity of silver nanoparticles," The Journal of Physical Chemistry C, vol. 118, no. 42, pp. 24680-24687, 2014.
[42] E. Martinsson, B. Sepulveda, P. Chen, A. Elfwing, B. Liedberg, and D. Aili, "Optimizing the refractive index sensitivity of plasmonically coupled gold nanoparticles," Plasmonics, vol. 9, no. 4, pp. 773-780, 2014.
[43] Nanopartz, " Nanopartz Recommended Storage and Handling," ed, 2021.
[44] Nanopartz. https://www.nanopartz.com/gold_nanorods.asp.
[45] A. B. Dahlin, J. O. Tegenfeldt, and F. Höök, "Improving the instrumental resolution of sensors based on localized surface plasmon resonance," Analytical chemistry, vol. 78, no. 13, pp. 4416-4423, 2006.
[46] F. Allegrini and A. C. Olivieri, "IUPAC-consistent approach to the limit of detection in partial least-squares calibration," Analytical chemistry, vol. 86, no. 15, pp. 7858-7866, 2014.
[47] H. M. Irving, H. Freiser, and T. S. West, Compendium of analytical nomenclature: definitive rules 1977. Elsevier, 2017.
[48] S. R. Gadagkar and G. B. Call, "Computational tools for fitting the Hill equation to dose–response curves," Journal of Pharmacological and Toxicological methods, vol. 71, pp. 68-76, 2015.
[49] J. G. Venegas, R. S. Harris, and B. A. Simon, "A comprehensive equation for the pulmonary pressure-volume curve," Journal of applied physiology, vol. 84, no. 1, pp. 389-395, 1998.
[50] W. t. t. L. T. Pages. https://theory.labster.com/dose-response/.