By Michael D. Glascock, Robert J. Speakman, Rachel S. Popelka-Filcoff
content material: increasing the variety of electron spin resonance relationship --
towards the category of colorants in archaeological textiles of japanese North the USA --
Infrared exam of fiber and particulate residues from archaeological textiles --
Extraction and research of DNA from archaeological specimens --
utilizing archaeological chemistry to enquire the geographic origins of trophy heads within the imperative Andes: strontium isotope research on the Wari website of Conchopata --
analyzing strong isotopic analyses: case reviews on Sardinian prehistory --
Bitumen in neolithic Iran: biomolecular and isotopic facts --
floor research of a black deposit from Little misplaced River Cave, Idaho --
Shell bead sourcing: a comparability of 2 recommendations on Olivella biplicata shells and beads from Western North the United States --
Archaeological soils and sediments: software of microfocus synchrotron X-ray scattering, diffraction, and fluorescence analyses in thin-section --
Quantitative modeling of soil chemical facts from inductively coupled plasma-optical emission spectroscopy finds proof for cooking and consuming in historical Mesoamerican plazas --
Chemical composition of tune dynasty, chinese language, copper-based cash through strength dispersive X-ray fluorescence --
Elemental compositions of Herodian Prutah, copper coins-of the Biblical "widow's mites" series--via power dispersive X-ray fluorescence --
Chemical composition of the Isfiya and Qumran coin hoards --
chosen purposes of laser ablation inductively coupled plasma--mass spectrometry to archaeological learn --
comparing the precision standards for isotope ratio choice of archaeological fabrics utilizing laser ablation-time-of-flight-inductively coupled plasma-mass spectrometry expanding ratio precision --
Lead isotope research of Roman carthage curse drugs --
Laser ablation--inductively coupled plasma-mass spectrometry research of historic copper alloy artifacts --
Laser ablation-inductively coupled plasma-mass spectrometry research utilized to the characterization of Peruvian Wari ceramics --
Characterization of creating fabrics from the brick chapel at old St. Mary's urban --
Characterization of 15th-16th century Majolica pottery stumbled on at the Canary Islands --
Intraregional provenancing of Philistine pottery from Israel --
The expertise of Mesopotamian ceramic glazes --
research of ancient latter-day Saint pottery glazes via laser ablation-inductively coupled plasma-mass spectrometry --
Fingerprinting specular Hematite from mines in Botswana, Southern Africa --
Instrumental neutron activation research of Ochre artifacts from Jiskairumoko, Peru --
Feasibility of field-portable XRF to spot obsidian assets in important Peten, Guatemala --
assets of archaeological obsidian in Peru: descriptions and geochemistry.
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Additional resources for Archaeological Chemistry. Analytical Techniques and Archaeological Interpretation
Html; accessed 7-9-2005. 37. Andrew, S. ; Eastop, D. Conservator 1994, 18, 50-56. 38. Johnston-Feller, R. Color Science in Examination of Museum Objects: Non -destructive Procedures; The Getty Conservation Institute: Marina del Rey, 2001; p 207. 39. Hayashi, K . In International Symposium on the Conservation and Restoration of Cultural Property; Tokyo National Research Institute on Cultural Properties: Tokyo, 1979; pp 48. 40. McCrone, W. ; Delly, J. G . PAE2: The Particle Atlas; electronic version, 2 Edition; McCrone Research Institute: Chicago, IL, 1997.
Availability of ideal lighting conditions during the actual sample taking is important. Photography may reveal details about colored patterns on the fabrics that may be difficult to recognize and sample i f the lighting does not produce similar conditions. This can potentially increase difficulty of sampling, the number of textile specimens, and sub-samples unnecessarily. Besides controlling lighting conditions, adequate magnification should be available during the work with the textiles. A nominal magnification of 8X was available before and during the actual sampling.
1996, 23, 149-156. 54. ; Jakes, K . A . J. Archaeol. Sci. 1997, 24, 517-527. 55. ; Jakes, K . A . J. Amer. Inst. Conserv. 2001, 40, 91-103. 56. htm; accessed 6-2-2005. 57. Goulding, J. ; Taylor & Francis: London, 1999; pp 175-192. 58. ; Ilani, S. J. Archaeol. Sci. 1994, 21, 461-467. 59. Speakman, R. ; Glascock, M. ; Higgins, B . In Archaeological Chemistry: Materials, Methods, and Meaning; Jakes, K . A . ; A C S Symposium Series No. 831; American Chemical Society: Washington, D C , 2002; pp 48-63.