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Overview of Platinum Group Minerals (PGM): A Statistical Perspective and Their Genetic Significance
by
Economou-Eliopoulos, Maria
, Hughes, Hannah S. R.
, Zaccarini, Federica
, Bowles, John F. W.
, Andersen, Jens C.
, Garuti, Giorgio
, Suárez, Saioa
in
Alluvial deposits
/ Alluvium
/ Antimony
/ Australia
/ Base metal
/ Biological activity
/ Brazil
/ Canada
/ Chalcopyrite
/ Chemical composition
/ Chondrites
/ Congo (Kinshasa)
/ Continental crust
/ Copper
/ Crystallography
/ Deposits
/ Earth
/ Earth mantle
/ Finland
/ Fluids
/ Fugacity
/ Genetic research
/ Geologists
/ Germany
/ Gold
/ Grains
/ Heavy metals
/ High temperature
/ Japan
/ Leaching
/ Mantle
/ Mercury
/ Metal industry
/ Metal sulfides
/ Meteorites
/ Meteors & meteorites
/ Microbial activity
/ Microorganisms
/ Microscopy
/ Mineral deposits
/ Mineralogy
/ Minerals
/ Miscibility
/ Nickel ores
/ Nomenclature
/ Ore deposits
/ Palladium
/ Phases
/ Physical properties
/ Placers
/ Platinum
/ Pyrite
/ Pyrrhotite
/ Rocks
/ Russia
/ Silver
/ Solid solutions
/ South Africa
/ Sulfides
/ Sulphide deposits
/ Sulphides
/ Trace elements
/ Ultramafic materials
/ Ultramafic rocks
/ United Kingdom
/ United States
/ Upper mantle
2026
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Overview of Platinum Group Minerals (PGM): A Statistical Perspective and Their Genetic Significance
by
Economou-Eliopoulos, Maria
, Hughes, Hannah S. R.
, Zaccarini, Federica
, Bowles, John F. W.
, Andersen, Jens C.
, Garuti, Giorgio
, Suárez, Saioa
in
Alluvial deposits
/ Alluvium
/ Antimony
/ Australia
/ Base metal
/ Biological activity
/ Brazil
/ Canada
/ Chalcopyrite
/ Chemical composition
/ Chondrites
/ Congo (Kinshasa)
/ Continental crust
/ Copper
/ Crystallography
/ Deposits
/ Earth
/ Earth mantle
/ Finland
/ Fluids
/ Fugacity
/ Genetic research
/ Geologists
/ Germany
/ Gold
/ Grains
/ Heavy metals
/ High temperature
/ Japan
/ Leaching
/ Mantle
/ Mercury
/ Metal industry
/ Metal sulfides
/ Meteorites
/ Meteors & meteorites
/ Microbial activity
/ Microorganisms
/ Microscopy
/ Mineral deposits
/ Mineralogy
/ Minerals
/ Miscibility
/ Nickel ores
/ Nomenclature
/ Ore deposits
/ Palladium
/ Phases
/ Physical properties
/ Placers
/ Platinum
/ Pyrite
/ Pyrrhotite
/ Rocks
/ Russia
/ Silver
/ Solid solutions
/ South Africa
/ Sulfides
/ Sulphide deposits
/ Sulphides
/ Trace elements
/ Ultramafic materials
/ Ultramafic rocks
/ United Kingdom
/ United States
/ Upper mantle
2026
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Overview of Platinum Group Minerals (PGM): A Statistical Perspective and Their Genetic Significance
by
Economou-Eliopoulos, Maria
, Hughes, Hannah S. R.
, Zaccarini, Federica
, Bowles, John F. W.
, Andersen, Jens C.
, Garuti, Giorgio
, Suárez, Saioa
in
Alluvial deposits
/ Alluvium
/ Antimony
/ Australia
/ Base metal
/ Biological activity
/ Brazil
/ Canada
/ Chalcopyrite
/ Chemical composition
/ Chondrites
/ Congo (Kinshasa)
/ Continental crust
/ Copper
/ Crystallography
/ Deposits
/ Earth
/ Earth mantle
/ Finland
/ Fluids
/ Fugacity
/ Genetic research
/ Geologists
/ Germany
/ Gold
/ Grains
/ Heavy metals
/ High temperature
/ Japan
/ Leaching
/ Mantle
/ Mercury
/ Metal industry
/ Metal sulfides
/ Meteorites
/ Meteors & meteorites
/ Microbial activity
/ Microorganisms
/ Microscopy
/ Mineral deposits
/ Mineralogy
/ Minerals
/ Miscibility
/ Nickel ores
/ Nomenclature
/ Ore deposits
/ Palladium
/ Phases
/ Physical properties
/ Placers
/ Platinum
/ Pyrite
/ Pyrrhotite
/ Rocks
/ Russia
/ Silver
/ Solid solutions
/ South Africa
/ Sulfides
/ Sulphide deposits
/ Sulphides
/ Trace elements
/ Ultramafic materials
/ Ultramafic rocks
/ United Kingdom
/ United States
/ Upper mantle
2026
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Overview of Platinum Group Minerals (PGM): A Statistical Perspective and Their Genetic Significance
Journal Article
Overview of Platinum Group Minerals (PGM): A Statistical Perspective and Their Genetic Significance
2026
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Overview
The six platinum group elements (PGE) are among the rarest elements in the upper continental crust of the earth. Higher values of PGE have been detected in the upper mantle and in chondrite meteorites. The PGE are siderophile and chalcophile elements and are divided into the following: (1) the Ir subgroup (IPGE) = Os, Ir, and Ru and (2) the Pd subgroup (PPGE) = Rh, Pt, and Pd. The IPGE are more refractory and less chalcophile than the PPGE. High concentrations of PGE led, in rare cases, to the formation of mineral deposits. The PGE are carried in discrete phases, the platinum group minerals (PGM), and are included as trace elements into the structure of base metal sulphides (BM), such as pentlandite, chalcopyrite, pyrite, and pyrrhotite. Similarly to PGE, the PGM are also divided into two main groups, i.e., IPGM composed of Os, Ir, and Ru and PPGM containing Rh, Pt, and Pd. The PGM occur both in mafic and ultramafic rocks and are mainly hosted in stratiform reefs, sulphide-rich lenses, and placer deposits. Presently, there are only 169 valid PGM that represent about 2.7% of all 6176 minerals discovered so far. However, 496 PGM are listed among the valid species that have not yet been officially accepted, while a further 641 are considered as invalid or discredited species. The main reason for the incomplete characterization of PGM resides in their mode of occurrence, i.e., as grains in composite aggregates of a few microns in size, which makes it difficult to determine their crystallography. Among the PGM officially accepted by the IMA, only 13 (8%) were discovered before 1958, the year when the IMA was established. The highest number of PGM was discovered between 1970 and 1979, and 99 PGM have been accepted from 1980 until now. Of the 169 PGM accepted by the IMA, 44% are named in honour of a person, typically a scientist or geologist, and 31% are named after their discovery localities. The nomenclature of 25% of the PGM is based on their chemical composition and/or their physical properties. PGM have been discovered in 25 countries throughout the world, with 64 from Russia, 17 from Canada and South Africa (each), 15 from China, 12 from the USA, 8 from Brazil, 6 from Japan, 5 from Congo, 3 from Finland and Germany (each), 2 from the Dominican Republic, Greenland, Malaysia, and Papua New Guinea each, and only 1 from Argentine, Australia, Bulgaria, Colombia, Czech Republic, England, Ethiopia, Guyana, Mexico, Serbia, and Tanzania each. Most PGM phases contain Pd (82 phases, 48% of all accepted PGM), followed, in decreasing order of abundances, by those of Pt 35 phases (21%), Rh 23 phases (14%), Ir 18 phases (11%), Ru 7 phases (4%), and Os 4 phases (2%). The six PGE forming the PGM are bonded to other elements such as Fe, Ni, Cu, S, As, Te, Bi, Sb, Se, Sn, Hg, Ag, Zn, Si, Pb, Ge, In, Mo, and O. Thirty-two percent of the 169 valid PGM crystallize in the cubic system, 17% are orthorhombic, 16% hexagonal, 14% tetragonal, 11% trigonal, 3% monoclinic, and only 1% triclinic. Some PGM are members of a solid-solution series, which may be complete or contain a miscibility gap, providing information concerning the chemical and physical environment in which the mineral was formed. The refractory IPGM precipitate principally in primitive, high-temperature, mantle-hosted rocks such as podiform and layered chromitites. Being more chalcophile, PPGE are preferentially collected and concentrated in an immiscible sulphide liquid, and, under appropriate conditions, the PPGM can precipitate in a thermal range of about 900–300 °C in the presence of fluids and a progressive increase of oxygen fugacity (fO2). Thus, a great number of Pt and Pd minerals have been described in Ni-Cu sulphide deposits. Two main genetic models have been proposed for the formation of PGM nuggets: (1) Detrital PGM represent magmatic grains that were mechanically liberated from their primary source by weathering and erosion with or without minor alteration processes, and (2) PGM reprecipitated in the supergene environment through a complex process that comprises solubility, the leaching of PGE from the primary PGM, and variation in Eh-pH and microbial activity. These two models do not exclude each other, and alluvial deposits may contain contributions from both processes.
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