Affiliation:
1. Department of Geology and Geoenvironment, School of Science, National and Kapodistrian University of Athens, Panepistimiopolis, Zografos, 15784 Athens, Greece
Abstract
This work delves into the presence of REE-Ti-Zr-U-Th minerals, in the mafic–intermediate rocks of the Maronia pluton, Greece, an Oligocene intrusion formed through arc-magmatism during subduction. In Maronia monzodiorite, critical metals are contained in three principal mineral groups, namely, the REE-Ti-Zr, REE-Ca-P, and U-Th assemblages. The REE-Ti-Zr group includes REE-ilmenite, chevkinite-like phases, zirconolite, and baddeleyite. The REE-Ca-P assemblage is represented by allanite-(Ce), monazite-(Ce), and huttonitic monazite-(Ce). The U-Th assemblage comprises thorite–coffinite and uraninite–thorianite solid solutions. The paragenetic sequencing of these minerals offers insights into their formation conditions and correlation with the pluton’s magmatic evolution. In the REE-Ti-Zr group, mineral formation progresses from REE-ilmenite to baddeleyite through chevkinite-like phases and zirconolite under oxidizing conditions. The REE-Ca-P sequence involves allanite-(Ce), followed by monazite-(Ce), late allanite-(Ce), and huttonitic monazite-(Ce). In the U-Th group, earlier thorite–coffinite phases are succeeded by uraninite–thorianite solid solutions, indicating Si-undersaturation at late magmatic stages. Fluctuations in Ca-activity induce alternating formations of allanite-(Ce) and monazite-(Ce). These mineral variations are attributed to early-stage interactions between high-K calc-alkaline and shoshonitic gabbroic melts, influencing critical metal enrichment and mineral speciation. The study’s insights into paragenesis and geological processes offer implications for mineral exploration in analogous geological settings.
Subject
Geology,Geotechnical Engineering and Engineering Geology
Reference112 articles.
1. David, R. (2012). Wilburn Byproduct Metals and Rare-Earth Elements Used in the Production of Light-Emitting Diodes—Overview of Principal Sources of Supply and Material Requirements for Selected Markets.
2. Rare Earth Elements Recovery from Fluorescent Lamps: A New Thermal Pretreatment to Improve the Efficiency of the Hydrometallurgical Process;Ippolito;J. Clean. Prod.,2017
3. Rare Earth Elements: Minerals, Mines, Magnets (and More);Chakhmouradian;Elements,2012
4. Moss, R.L., Tzimas, E., Kara, H., Willis, P., and Kooroshy, J. (2011). Critical Metals in Strategic Energy Technologies.
5. Rare Earth Elements: Industrial Applications and Economic Dependency of Europe;Charalampides;Procedia Econ. Financ.,2015
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