From Crystals to Color: A Compendium of Multi-Analytical Data on Mineralogical Phases in Opaque Colored Glass Mosaic Tesserae
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[1] M. Martini,et al. Colourants and opacifiers of mosaic glass tesserae from Khirbet al-Mafjar (Jericho, Palestine): addressing technological issues by a multi-analytical approach and evaluating the potentialities of thermoluminescence and optically stimulated luminescence dating , 2017, Archaeological and Anthropological Sciences.
[2] M. Tite,et al. On the origins of tin-opacified ceramic glazes: New evidence from early Islamic Egypt, the Levant, Mesopotamia, Iran, and Central Asia , 2018, Journal of Archaeological Science.
[3] S. Maltoni,et al. A Mosaic of Colors: Investigating Production Technologies of Roman Glass Tesserae from Northeastern Italy , 2018, Minerals.
[4] J. Henderson,et al. Mosaic tesserae from Italy and the production of Mediterranean coloured glass (4rd century BCE–4th century CE). Part I: Chemical composition and technology , 2016 .
[5] T. Vaculovic,et al. Hellenistic cast monochrome glass vessels from Staré Hradisko, 2nd–1st cent. BCE , 2018, Journal of Archaeological Science: Reports.
[6] Susanna Bracci,et al. Florence Baptistery: chemical and Mineralogical Investigation of glass mosaic tesserae , 2011 .
[7] P. Guerriero,et al. The palaeo-Christian glass mosaic of St. Prosdocimus (Padova, Italy): archaeometric characterisation of tesserae with antimony- or phosphorus-based opacifiers , 2012 .
[8] M. Tite,et al. Production technology and replication of lead antimonate yellow glass from New Kingdom Egypt and the Roman Empire , 2014 .
[9] Andrew Meek,et al. The glass walls of Samarra (Iraq): Ninth-century Abbasid glass production and imports , 2018, PloS one.
[10] P. Guerriero,et al. The palaeo-Christian glass mosaic of St. Prosdocimus (Padova, Italy): archaeometric characterisation of tesserae with copper- or tin-based opacifiers , 2014 .
[11] R. Arletti,et al. Considering the effects of the Byzantine–Islamic transition: Umayyad glass tesserae and vessels from the qasr of Khirbet al-Mafjar (Jericho, Palestine) , 2017, Archaeological and Anthropological Sciences.
[12] F. d’Acapito,et al. The role of copper on colour of palaeo-Christian glass mosaic tesserae: An XAS study , 2012 .
[13] Ian C. Freestone,et al. Ancient glass: from kaleidoscope to crystal ball , 2015 .
[14] P. P. Lottici,et al. Characterization of colorants and opacifiers in roman glass mosaic tesserae through spectroscopic and spectrometric techniques , 2014 .
[15] E. Gliozzo,et al. THE COLOURED TESSERAE DECORATING THE VAULTS OF THE FARAGOLA BALNEUM (ASCOLI SATRIANO, FOGGIA, SOUTHERN ITALY) , 2012 .
[16] R. Arletti,et al. Roman coloured and opaque glass: a chemical and spectroscopic study , 2006 .
[17] R. Arletti,et al. MOSAIC GLASS FROM ST PETER'S, ROME: MANUFACTURING TECHNIQUES AND RAW MATERIALS EMPLOYED IN LATE 16TH-CENTURY ITALIAN OPAQUE GLASS , 2011 .
[18] Martin Heck,et al. The production of lead-tin yellow at Merovingian Schleitheim (Switzerland) , 2003 .
[19] David Hradil,et al. Raman scattering features of lead pyroantimonate compounds. Part I: XRD and Raman characterization of Pb2Sb2O7 doped with tin and zinc , 2009 .
[20] Julian Henderson,et al. THE RAW MATERIALS OF EARLY GLASS PRODUCTION , 1985 .
[21] Qinghui Li,et al. Characterization of microcrystals in some ancient glass beads from china by means of confocal Raman microspectroscopy , 2013 .
[22] Jakub Szlachetko,et al. Synthesizing lead antimonate in ancient and modern opaque glass , 2011 .
[23] D. Smith,et al. Catalogue of 45 reference Raman spectra of minerals concerning research in art history or archaeology, especially on corroded metals and coloured glass. , 2003, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[24] Martin Heck,et al. Coloured opaque glass beads of the Merovingians , 2000 .
[25] S. Maltoni,et al. Innovation and tradition in the fourth century mosaic of the Casa delle Bestie Ferite in Aquileia, Italy: archaeometric characterisation of the glass tesserae , 2018, Archaeological and Anthropological Sciences.
[26] R. Stone,et al. An Investigation of the Antimony-Containing Minerals used by the Romans to Prepare Opaque Colored Glasses , 1996 .
[27] S. Chenery,et al. Roman coloured glass in the Western provinces: The glass cakes and tesserae from West Clacton in England , 2015 .
[28] Tom Gregory,et al. Analyses of glass tesserae from Kilise Tepe: New insights into an early Byzantine production technology , 2017 .
[29] M. Tite,et al. DISCOVERY, PRODUCTION AND USE OF TIN-BASED OPACIFIERS IN GLASSES, ENAMELS AND GLAZES FROM THE LATE IRON AGE ONWARDS: A REASSESSMENT* , 2007 .
[30] W. Kiefer,et al. Characterisation of inorganic pigments in ancient glass beads by means of Raman microspectroscopy, microprobe analysis and X‐ray diffractometry , 2007 .
[31] C. Specht,et al. Chemical characterisation of glass mosaic tesserae from sixth-century Sagalassos (south-west Turkey): chronology and production techniques , 2012 .
[32] R. Šefců,et al. An investigation of the lead tin yellows type I and II and their use in Bohemian panel paintings from the Gothic period , 2015, Heritage Science.
[33] E. Rauch,et al. A novelty for cultural heritage material analysis: Transmission Electron Microscope (TEM) 3D electron diffraction tomography applied to Roman glass tesserae , 2018 .
[34] M. Wypyski. Technical Analysis of Glass Mosaic Tesseraefrom Amorium , 2005 .
[35] G. Morin,et al. Rediscovering ancient glass technologies through the examination of opacifier crystals , 2008 .
[36] R. Stone,et al. Malkata and Lisht Glassmaking Technologies: Towards a Specific Link between Second Millennium BC , 2002 .
[37] Paola Ricciardi,et al. A non-invasive study of Roman Age mosaic glass tesserae by means of Raman spectroscopy , 2009 .
[38] D. Michaelides,et al. Technology and materials of Early Christian Cypriot wall mosaics , 2016 .
[39] M. Ammar,et al. Something old, something new: the late antique mosaics from the catacomb of San Gennaro (Naples) , 2018, Journal of Archaeological Science: Reports.
[40] S. Maltoni,et al. Investigating a Byzantine technology: experimental replicas of Ca-phosphate opacified glass , 2019, Journal of Cultural Heritage.
[41] J. Susini,et al. Synthesis of calcium antimonate nano-crystals by the 18th dynasty Egyptian glassmakers , 2009 .
[42] I. Stead. I.—A La Tène III Burial at Welwyn Garden City , 1967 .
[43] Costanza Miliani,et al. Raman scattering features of lead pyroantimonate compounds: implication for the non‐invasive identification of yellow pigments on ancient ceramics. Part II. In situ characterisation of Renaissance plates by portable micro‐Raman and XRF studies , 2011 .
[44] L. Peruzzo,et al. Multi-methodological characterisation of calcium phosphate in late-Antique glass mosaic tesserae , 2016 .
[45] E. Liarokapis,et al. Micro-Raman and FTIR studies of synthetic and natural apatites. , 2007, Biomaterials.
[46] A. Shugar. BYZANTINE OPAQUE RED GLASS TESSERAE FROM BEIT SHEAN, ISRAEL , 2000 .
[47] Moujan Matin. Tin-based opacifiers in archaeological glass and ceramic glazes: a review and new perspectives , 2018, Archaeological and Anthropological Sciences.