參考文獻 |
[1] L. Burckle, and H. D. Grissino-Mayer, "Stradivari, violins, tree rings, and the Maunder Minimum: a hypothesis," Dendrochronologia, Vol. 21, No. 1, pp. 41-45, 2003.
[2] A. Bohlen, "Quantitative Analysis of Minor and Trace Elements in Historical Varnishes Using Total Reflection X‐Ray Fluorescence," Analytical Letters, Vol. 37, No. 3, pp. 491-498, 2004.
[3] F. Caruso, S. Saverwyns, M. V. Bos, D. F. C. Martino, A.-E. Ceulemans, J. Valck, and E. Caponetti, "Micro-X-Ray Fluorescence and the Old Masters," Applied Physics A, Vol. 107, No. 1, pp. 197-202, 2012.
[4] J. Topham, and D. McCormick, "FOCUS: A Dendrochronological Investigation of Stringed Instruments of the Cremonese School (1666–1757) including ‘‘The Messiah’’ violin attributed to Antonio Stradivari," Journal of Archaeological Science, Vol. 27, No. 3, pp. 183-192, 2000.
[5] C. Invernizzi, A. Daveri, T. Rovetta, M. Vagnini, M. Licchelli, F. Cacciatori, and M. Malagodi, "A multi-analytical non-invasive approach to violin materials: The case of Antonio Stradivari “Hellier” (1679)," Microchemical Journal, Vol. 124, pp. 743-750, 2016.
[6] J.-P. Echard, "In situ multi-element analyses by energy-dispersive X-ray fluorescence on varnishes of historical violins," Spectrochimica Acta, Vol. 59, No. 10-11, pp. 1663-1667, 2004.
[7] S. Robinson, and A. H. Robinson, "Chemical Composition of Sweat," Physiological Reviews, Vol. 34, No. 2, pp. 202, 1954.
[8] H. C. Tai, G. C. Li, S. J. Huang, C. R. Jhu, J. H. Chung, B. Y. Wang, C. S. Hsu, B. Brandmair, D. T. Chung, H. M. Chen, and J. C. C. Chan, "Chemical distinctions between Stradivari’s maple and modern tonewood, " PNAS, Vol. 114, No. 1, pp. 27-31, 2017.
[9] M. Yokoyama, J. Gril, M. Matsuo, H. Yano, J. Sugiyama , B. Clair, S. Kubodera , T. Mistutani, M. Sakamoto, H Ozaki, M. Imamura, and S. Kawai, "Mechanical characteristics of aged Hinoki wood from Japanese historical buildings," Comptes Rendus Physique, Vol. 10, No. 7, pp. 601-611, 2009.
[10] S. T. Dyer, "Wood fluorescence of indigenous south african trees," IAWA Bulletin, Vol. 9, No. 1, pp. 75-87, 1988.
[11] S. T. Sum, D. L. Singleton, G. Paraskevopoulos R. S. Irwin, R. J. Barbour, and R Sutcliffe, "Laser-excited fluorescence spectra of eastern SPF wood species. An optical technique for identification and separation of wood species?," Wood Science and Technology, Vol. 25, No. 6, pp. 405-413, 1991
[12] K. K. Pandey, N. K. Upreti, and V. V. Srinivasan, "A fluorescence spectroscopic study on wood," Institute of Wood Science and Technology, Vol. 32, No. 4, pp. 309-315, 1998.
[13] E. Billa, A. Pastou, B. Monties, J. Romero, and E. G. Koukios, "Multivariate chemometric analysis of the fluorescence spectra of eucalyptus wood," Industrial Crops and Products, Vol. 11, No. 2-3, pp. 187-196, 2000.
[14] J. Nagyvary, J. A. DiVerdi, N. L. Owen, and H. D. Tolley, "Wood used by Stradivari and Guarneri," Nature, Vol. 444, pp. 565, 2006.
[15] R. A. Parham, and R. L. Gray, "Formation and Structure of Wood," Advances in Chemistry, Vol. 207, pp. 3-56, 1984.
[16] C. Loix, M. Huybrechts, J. Vangronsveld, M. Gielen, E. Keunen , and A. Cuypers, "Reciprocal Interactions between Cadmium-Induced Cell Wall Responses and Oxidative Stress in Plants," Frontiers in Plant Science, Vol. 8, pp. 1-19, 2017.
[17] D. Djikanovic, A. Devecerski, G. Steinbach, J. Simonovic, B. Matovic, G. Garab, A. Kalauzi, and K. Radotic, "Comparison of macromolecular interactions in the cell walls of hardwood, softwood and maize by fluorescence and FTIR spectroscopy, differential polarization laser scanning microscopy and X-ray diffraction," Wood Science and Technology, Vol. 50, No. 3, pp. 547-566, 2016.
[18] https://www.sciencedirect.com/topics/materials-science/softwood
[19] M. G. Mayer, "Uber elementarakte mit zwei quantensprungen," Wiley Online Library, Vol. 401, No. 3, pp. 273-294, 1930.
[20] F. Helmchen, and W. Denk, "Deep tissue two-photon microscopy," Nature, Vol. 2, No. 12, pp. 932-938, 2005.
[21] W. Denk, J. H. Strickler, and W. W. Webb, "Two-Photon Laser Scanning Fluorescence Microscopy," Science, Vol. 248, No. 4951, pp. 74-76, 1990.
[22] H.-W. Liu, Y. Liu, P. Wang, and X.-B. Zhang, "Molecular engineering of two-photon fluorescent probes for bioimaging applications," IOP Publishing, Vol. 5, No. 1, pp.1-24, 2017.
[23] C. R. Graham, " Two-photon uncaging of glutamate," Frontiers, Vol. 10, pp. 1-13, 2019.
[24] G. Cox, and N. Moreno, "Second-harmonic imaging of plant polysaccharides," Journal of Biomedical Optics, Vol. 10, No. 2, pp. 024013-1-024013-6, 2005.
[25] P. A. Franken, A. E. Hill, C. W. Peters, and G. Weinreich, " Generation of optical harmonics," Physical review letters, Vol. 7, No. 4, pp. 118-119, 1961.
[26] S. W. Paddock, " Confocal Laser Scanning Microscopy," BioTechniques, Vol. 27, No. 5, pp.992-1004, 1999.
[27] W. Denk, J. H. Strickler, and W. W. Webb, "Two-photon laser scanning fluorescence microscopy," Science, Vol. 248, pp. 73-76, 1990.
[28] T. Vo-Dinh, "A hyperspectral imaging system for in vivo optical diagnostics," IEEE Engineering in Medicine and Biology Magazine, Vol. 23, pp. 40-49, 2004.
[29] A. Goetz, G. Vane, J. Solomon, and B. Rock, "Imaging spectrometry for earth remote sensing," Science, Vol. 228, pp. 1147-1152, 1985.
[30] W. R. Johnson, D. W. Wilson, W. Fink, M. Humayun, and G. Bearman, " Snapshot hyperspectral imaging in ophthalmology, "Journal of Biomedical Optics, Vol. 12, pp. 014036-1-14036-7, 2007.
[31] G. Lu, and B. Fei, "Medical hyperspectral imaging: a review," Journal of Biomedical Optics, Vol. 19, No. 1, pp. 010901-1-010901-23, 2014.
[32] Y. Uno, S. O. Prasher, R. Lacroix, P. K. Goel, Y. Karimi, A. Viau, and R. M. Patel, "Artificial neural networks to predict corn yield from Compact Airborne Spectrographic Imager data, " Computers and Electronics in Agriculture, pp. 149-161, 2005.
[33] D. Wu , and D.-W. Sun, "Advanced applications of hyperspectral imaging technology for food quality and safety analysis and assessment: A review— Part I: Fundamentals," Innovative Food Science & Emerging Technologies, Vol. 19, pp. 1-28, 2013.
[34] A. A. Gowena, C. P. O’Donnell, P. J. Cullenb, G. Downeyc, and J. M. Frias, "Hyperspectral imaging e an emerging process analytical tool for food quality and safety control," Trends in Food Science & Technology, Vol. 18, pp. 590-598, 2007.
[35] R. M. Levenson, P. J. Cronin, and N. R. Harvey, "Spectral imaging and biomedicine: new devices, new approaches," IEEE, Vol. 31, pp. 105-111, 2002.
[36] Z. Liu, J.-q. Yan, D. Zhang, and Q.-L. Li, "Automated tongue segmentation in hyperspectral images for medicine," Applied Optics, Vol. 46, pp. 8328-8334, 2007.
[37] J. M. Benavides, S. Chang, S. Y. Park, and R. R. Kortum, "Multispectral digital colposcopy for in vivo detection of cervical cancer," Optics express,Vol. 11, No. 10, pp. 1223-1236, 2003.
[38] S. T. Monteiro, Y. Minekawa, Y. Kosugi, T. Akazawa, and K. Oda, "Prediction of sweetness and amino acid content in soybean crops from hyperspectral imagery," ISPRS Journal of Photogrammetry & Remote Sensing, Vol. 62, pp. 2-12, 2007.
[39] A. A. Gowen, M. Taghizadeh, and C. P. O’Donnell, "Identification of mushrooms subjected to freeze damage using hyperspectral imaging," Journal of Food Engineering, Vol. 93, pp. 7-12, 2009.
[40] A. F. H. Goetz, "Three decades of hyperspectral remote sensing of the Earth: A personal view," Remote Sensing of Environment, Vol. 113, pp. 5-16, 2009.
[41] Q. Li, X. He, Y. Wang, H. Liu, D. Xu, and F. Guo, "Review of spectral imaging technology in biomedical engineering: achievements and challenges," Journal of Biomedical Optics, Vol. 18, No. 10, pp. 100901-1-010901-28, 2013.
[42] 呂喬聖,「非反掃描式平行接收之雙光子螢光超光譜顯微術」,國立中央大學,碩士論文,民國102年。
[43] S.-Y. Chen, C.-S. Lu, and C.-H. Yeh, "Non-de-scanned parallel recording two-photon hyperspectral microscopy with high spectral and spatial resolution," OSA,Vol. 5, No. 2, pp. 338-347, 2014.
[44] M. B. Sinclair, D. M. Haaland, J. A. Timlin, and H. D. Jones, "Hyperspectral confocal microscope," Applied Optics, Vol. 45, pp. 6283-6291, 2006.
[45] T. Zimmermann, "Spectral Imaging and Linear Unmixing in Light Microscopy," Microscopy Techniques, Vol. 95, pp. 245-265, 2005.
[46] H. Tsurui, H. Nishimura, S. Hattori, S. Hirose, K. Okumura, and T. Shirai, "Seven-color Fluorescence Imaging of Tissue Samples Based on Fourier Spectroscopy and Singular Value Decomposition," The Journal of Histochemistry & Cytochemistry, Vol. 48, No. 5, pp. 653-662, 2000.
[47] G. Peters, and J. H. Wilkinson, "The least squares problem and pseudo-inverses," The Computer Journal, Vol. 13, No. 3, pp. 309-316, 1970.
[48] D. Djikanovic, A. Devecerski, G. Steinbach, J. Simonovic, B. Matovic, G. Garab, A. Kalauzi, and K. Radotic, " Comparison of macromolecular interactions in the cell," Wood Science and Technology, Vol. 52, No. 3, pp. 547-566, 2016.
[49] P. J. Chantry, " Doppler Broadening in Beam Experiments," The Journal of Chemical Physics, Vol. 55, No. 6, pp. 2746-2759, 1971. |