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Luminescence: The “Cold Glow” of Minerals
Analysing the Luminescence of Gems
Swelling capacity of mixed talc-like/stevensite layers in white/green clay infillings (“deweylite”/ “garnierite”) from serpentine veins of faulted peridotites, New Caledonia
Polygenic chamosite from a hydrothermalized oolitic ironstone (Saint-Aubin-des-Châteaux, Armorican Massif, France): crystal chemistry, visible–near-infrared spectroscopy (red variety) and geochemical significance
Phyllomanganate vein-infillings in faulted and Al-poor regoliths of the New Caledonian ophiolite: periodic and sequential crystallization of Ni–asbolane, Alk–birnessite and H–birnessite
Lasnierite, (Ca,Sr)(Mg,Fe) 2 Al(PO 4 ) 3 , a new phosphate accompanying lazulite from Mt. Ibity, Madagascar: an example of structural characterization from dynamical refinement of precession electron diffraction data on submicrometre sample
Why Are Some Crystals Gem QUALITY? CRYSTAL Growth Considerations On the “gem Factor”
An alternative model for the formation of hydrous Mg/Ni layer silicates (‘deweylite’/‘garnierite’) in faulted peridotites of New Caledonia: I. Texture and mineralogy of a paragenetic succession of silicate infillings
New typology and origin of tsavorite based on trace-element chemistry
XAS evidence for Ni sequestration by siderite in a lateritic Ni-deposit from New Caledonia
Geochemical and petrological characterization of gem opals from Wegel Tena, Wollo, Ethiopia: opal formation in an Oligocene soil
Raman spectroscopy applied to Gemmology
Abstract Raman spectroscopy has become a routine technique in gemmological laboratories since the late 1990s. It is mostly used for identification of inclusions and this is of interest in determining the geographical origin of a gem by means of specific inclusions or mineral associations. Raman spectroscopy also helps to detect treatment, e.g . modification of mineral phases during heating, or the presence of organic impregnation material in open fractures. The identification of macro samples is useful in the small number of cases where it is diffucilt to identify the sample using ‘classical gemmology’ means, e.g . rare gems, exotic simulants, or varieties with unusual appearances. Attention is increasingly paid to the width of the Raman band, which carries information on order-disorder, which is of gemmological relevance because of the state of the crystallinity. For example, synthetic turquoise has a smaller grain size than its natural equivalent, and linewidth increases with the degree of metamictization of zircon. Resonant Raman spectroscopy has proved very useful in identifying pigments in pearls and corals, even in the identification of protected species. This helps, for example, to establish whether pearl or coral colour is natural or due to artificial dyes. Finally, laser photoluminescence spectra of gems obtained on a Raman system are now routinely collected, often at liquid-nitrogen temperature. Originally this was the only way to separate natural colourless diamonds from those turned colourless by high-pressure, high-temperature treatment. Recently, this approach has expanded into the study of Cr 3+ luminescence in spinel and corundum.