THE ANALYSIS OF SEA TURTLE AND BOVID KERATIN ARTEFACTS USING DRIFT SPECTROSCOPY AND DISCRIMINANT ANALYSIS
暂无分享,去创建一个
[1] C. Coupry,et al. Fourier transform Raman spectroscopic study of the first cellulose‐based artificial materials in heritage , 2005 .
[2] C. Limpus,et al. The use of measured scutes of hawksbill turtles, Eretmochelys imbricata, in the management of the tortoiseshell (Bekko) trade , 1990 .
[3] Barbara Salvadori,et al. Spectroscopic Techniques in Cultural Heritage Conservation: A Survey , 2005 .
[4] James E Hendrix,et al. Discrimination of Nylon Polymers Using Attenuated Total Reflection Mid-Infrared Spectra and Multivariate Statistical Techniques , 2005, Applied spectroscopy.
[5] E. Espinoza,et al. Analysis of Fiber Blends Using Horizontal Attenuated Total Reflection Fourier Transform Infrared and Discriminant Analysis , 2006, Applied spectroscopy.
[6] F. R. Cole,et al. Common Names of Mammals of the World , 2000 .
[7] FTIR spectroscopy and taxonomic purpose: Contribution to the classification of lactic acid bacteria , 2001 .
[8] J. Hendrickson,et al. The structure of the carapace and plastron of juvenile turtles, Chelonia mydas (the green turtle) and Caretta caretta (the loggerhead turtle). , 1986, Journal of anatomy.
[9] Effendi Widjaja,et al. Use of Raman Spectroscopy and Multivariate Classification Techniques for the Differentiation of Fingernails and Toenails , 2006, Applied spectroscopy.
[10] L. Alibardi. Immunocytochemistry and Keratinization in the Epidermis of Crocodilians , 2003 .
[11] L. Alibardi,et al. Immunolocalization and characterization of beta-keratins in growing epidermis of chelonians. , 2006, Tissue & cell.
[12] M. René,et al. FAO species catalogue Vol. 11. Sea turtles of the world: An annotated and illustrated catalogue of sea turtle species known to date , 1990 .
[13] J. Gillespie,et al. Structure and biochemistry of mammalian hard keratin. , 1991, Electron microscopy reviews.
[14] L. Mauer,et al. Differentiation of carbohydrate gums and mixtures using fourier transform infrared spectroscopy and chemometrics. , 2005, Journal of agricultural and food chemistry.
[15] P. Pritchard,et al. Taxonomy, External Morphology, and Species Identification , 1999 .
[16] D A Parry,et al. The molecular structure of reptilian keratin. , 1996, International journal of biological macromolecules.
[17] L. Alibardi. Proliferation in the epidermis of chelonians and growth of the horny scutes , 2005, Journal of morphology.
[18] E. J. Ambrose,et al. Infra-red spectra and structure of fibrous proteins , 1951, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[19] Royston Goodacre,et al. Rapid Differentiation of Closely RelatedCandida Species and Strains by Pyrolysis-Mass Spectrometry and Fourier Transform-Infrared Spectroscopy , 1998, Journal of Clinical Microbiology.
[20] D. Lyman,et al. Effect of Temperature on the Conformation of Extended α-Keratin , 2001 .
[21] Julie A. Reilly. CELLULOID OBJECTS: THEIR CHEMISTRY AND PRESERVATION , 1991 .
[22] J. Hopkins,et al. Variation of the amide I and amide II peak absorbance ratio in human hair as measured by Fourier transform infrared spectroscopy. , 1991, Forensic science international.
[23] A. Lehninger. Principles of Biochemistry , 1984 .
[24] Saravanan Dharmaraj,et al. The classification of Phyllanthus niruri Linn. according to location by infrared spectroscopy , 2006 .
[25] L. Rintoul,et al. Fourier transform infrared spectrometry: a versatile technique for real world samples. , 1998, The Analyst.
[26] L. Alibardi. Adaptation to the land: The skin of reptiles in comparison to that of amphibians and endotherm amniotes. , 2003, Journal of experimental zoology. Part B, Molecular and developmental evolution.
[27] H. J. Woods,et al. X-Ray Studies of the Structure of Hair, Wool, and Related Fibres. II. The Molecular Structure and Elastic Properties of Hair Keratin , 1934 .
[28] N. Alexander,et al. Formation of α- and β-type keratin in lizard epidermis during the molting cycle , 1969, Zeitschrift für Zellforschung und Mikroskopische Anatomie.
[29] L. Alibardi. Ultrastructural and immunohistochemical observations on the process of horny growth in chelonian shells. , 2006, Acta histochemica.
[30] D. Lewis,et al. The use of Fourier transform infra‐red spectroscopy in the study of the surface chemistry of hair fibres , 1991, International journal of cosmetic science.
[31] E. Bendit. Infrared absorption spectrum of keratin. I. Spectra of α‐, β‐, and supercontracted keratin , 1966 .
[32] William Thomas Astbury,et al. X-Ray Studies of the Structure of Hair, Wool, and Related Fibres. I. General , 1932 .
[33] Edward G. Bartick,et al. Forensic discrimination of photocopy and printer toners II. Discriminant analysis applied to infrared reflection-absorption spectroscopy , 2003, Analytical and bioanalytical chemistry.
[34] H. Edwards,et al. FT-Raman spectroscopic study of keratotic materials: horn, hoof and tortoiseshell. , 1998, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[35] Claude Coupry,et al. ATR-FTIR spectroscopy as a way to identify natural protein-based materials, tortoiseshell and horn, from their protein-based imitation, galalith. , 2005, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[36] Thomas G. Spiro,et al. Biological applications of Raman spectroscopy , 1987 .
[37] Vincent Baeten,et al. Edible oils and fats authentication by Fourier transform Raman spectrometry , 2000 .
[38] H. Edwards,et al. Fourier-transform Raman spectroscopy of mammalian and avian keratotic biopolymers. , 1997, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[39] J. Frazier. Observations on Sea Turtles at Aldabra Atoll , 1971 .
[40] L. Lougas,et al. From Hooves to Horns, from Mollusc to Mammoth :Manufacture and Use of Bone Artefacts from Prehistoric Times to the Present ; Proceedings of the 4th Meeting of the ICAZ Worked Bone Research Group at Tallinn, 26th-31st of August 2003 , 2005 .