Automatic element and mineral detection in thin sections using hyperspectral transmittance imaging microscopy (HyperTIM)
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Published:2022-05-10
Issue:3
Volume:34
Page:275-284
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ISSN:1617-4011
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Container-title:European Journal of Mineralogy
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language:en
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Short-container-title:Eur. J. Mineral.
Author:
Daempfling Helge L. C., Mielke Christian, Koellner Nicole, Lorenz Melanie, Rogass Christian, Altenberger UweORCID, Harlov Daniel E., Knoper Michael
Abstract
Abstract. In this study we present a novel method for the automatic
detection of minerals and elements using hyperspectral transmittance imaging
microscopy measurements of complete thin sections (HyperTIM). This is
accomplished by using a hyperspectral camera system that operates in the
visible and near-infrared (VNIR) range with a specifically designed sample
holder, scanning setup, and a microscope lens. We utilize this method on a
monazite ore thin section from Steenkampskraal (South Africa), which we
analyzed for the rare earth element (REE)-bearing mineral monazite ((Ce,Nd,La)PO4), with high
concentrations of Nd. The transmittance analyses with the hyperspectral VNIR
camera can be used to identify REE minerals and Nd in thin sections. We
propose a three-point band depth index, the Nd feature depth index (NdFD),
and its related product the Nd band depth index (NdBDI), which enables
automatic mineral detection and classification for the Nd-bearing monazites
in thin sections. In combination with the average concentration of the
relative Nd content, it permits a destruction-free, total concentration
calculation for Nd across the entire thin section.
Funder
Deutsche Forschungsgemeinschaft
Publisher
Copernicus GmbH
Subject
Pulmonary and Respiratory Medicine,Pediatrics, Perinatology and Child Health
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