Результаты исследований: Научные публикации в периодических изданиях › статья › Рецензирование
Carbide-Nitride Assemblages of the Earth's Crustal Telluric Iron: A Possible Key to Unraveling the Formation Pathways of Metal Rich Asteroids. / Верещагин, Олег Сергеевич; Хмельницкая, Майя Олеговна; Власенко, Наталия Сергеевна; Перова, Елена Николаевна; Мурашко, Михаил Николаевич; Вапник, Е.; Сухаржевская, Елена Станиславовна; Копылова, Альбина; Бритвин, Сергей Николаевич.
в: Journal of Geophysical Research: Planets, Том 131, № 4, e2025JE009396, 28.03.2026.Результаты исследований: Научные публикации в периодических изданиях › статья › Рецензирование
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TY - JOUR
T1 - Carbide-Nitride Assemblages of the Earth's Crustal Telluric Iron: A Possible Key to Unraveling the Formation Pathways of Metal Rich Asteroids
AU - Верещагин, Олег Сергеевич
AU - Хмельницкая, Майя Олеговна
AU - Власенко, Наталия Сергеевна
AU - Перова, Елена Николаевна
AU - Мурашко, Михаил Николаевич
AU - Вапник, Е.
AU - Сухаржевская, Елена Станиславовна
AU - Копылова, Альбина
AU - Бритвин, Сергей Николаевич
PY - 2026/3/28
Y1 - 2026/3/28
N2 - Iron is one of the most common elements on Earth and is present in the modern crust mainly in the form of (hydro)oxides and silicates, whereas terrestrial (telluric) native Fe is extremely rare. It is generally assumed that telluric Fe differs greatly in its chemical composition and mineralogy from the metal of iron meteorites, indicating different modes of formation. We uncover haxonite (NiFe22C6) and uakitite (VN) within telluric iron assemblages in terrestrial crustal rocks (volcanic rocks of the Norilsk ore region, Russia and metamorphic rocks of the Hatrurim Basin, Israel, respectively). Both minerals were previously discovered in iron meteorites and were thought to be absent in Earth's crustal rocks. Consequently, we analyzed available data on terrestrial rocks containing native iron and iron meteorites and compared their oxygen-free mineral assemblages. The resemblance in mineralogy suggests that at least some metal-rich asteroids may have formed in a manner similar to telluric iron. We suggest that heating at low pressures (T ≈ 1000°C, P < 10 MPa) of the primary Fe-bearing silicates in the presence of organic matter led to the formation of an iron melt at low oxygen fugacity (up to 5 units below Fe-FeO buffer). Significant differences in the geochemistry of terrestrial and extraterrestrial iron are associated with different degrees of evolution of the primary minerals involved in their formation.
AB - Iron is one of the most common elements on Earth and is present in the modern crust mainly in the form of (hydro)oxides and silicates, whereas terrestrial (telluric) native Fe is extremely rare. It is generally assumed that telluric Fe differs greatly in its chemical composition and mineralogy from the metal of iron meteorites, indicating different modes of formation. We uncover haxonite (NiFe22C6) and uakitite (VN) within telluric iron assemblages in terrestrial crustal rocks (volcanic rocks of the Norilsk ore region, Russia and metamorphic rocks of the Hatrurim Basin, Israel, respectively). Both minerals were previously discovered in iron meteorites and were thought to be absent in Earth's crustal rocks. Consequently, we analyzed available data on terrestrial rocks containing native iron and iron meteorites and compared their oxygen-free mineral assemblages. The resemblance in mineralogy suggests that at least some metal-rich asteroids may have formed in a manner similar to telluric iron. We suggest that heating at low pressures (T ≈ 1000°C, P < 10 MPa) of the primary Fe-bearing silicates in the presence of organic matter led to the formation of an iron melt at low oxygen fugacity (up to 5 units below Fe-FeO buffer). Significant differences in the geochemistry of terrestrial and extraterrestrial iron are associated with different degrees of evolution of the primary minerals involved in their formation.
KW - Psyche
KW - carbide
KW - iron meteorite
KW - mineral
KW - native iron
KW - nitride
UR - https://www.mendeley.com/catalogue/b55b826a-0459-3dbe-a5d5-3c0fa84fac73/
UR - https://www.scopus.com/pages/publications/105034347694
U2 - 10.1029/2025JE009396
DO - 10.1029/2025JE009396
M3 - Article
VL - 131
JO - Journal of Geophysical Research: Planets
JF - Journal of Geophysical Research: Planets
SN - 2169-9097
IS - 4
M1 - e2025JE009396
ER -
ID: 151304587