2025/01/25 by Sukalpa Chatterjee, Arathy Ravindran, Qasid Ahmad +3 · 1 voice
Earth and Planetary Sciences · #Geological and Geochemical Analysis #Geochemistry and Elemental Analysis #Paleontology and Stratigraphy of Fossils
paper · doi:10.1016/j.epsl.2025.119227
openalex publication_date 2025/01/25 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/22
• 2.8 Ga – 1.8 Ga old mantle-derived Singhbhum dykes have enriched crustal signatures. • Element and isotope composition of dykes consistent with mantle source metasomatism. • Sediment and mafic crust-derived low-degree melts caused mantle metasomatism. • One of the oldest evidence of mantle metasomatism by surface material at 3.44 Ga. • Coeval horizontal tectonics-driven recycling and crust formation in the Paleoarchean. The formation of cratons was a fundamental process on Earth during the Archean. Cratons are characterized by a stable lithosphere consisting of felsic continental crust overlying a lithospheric mantle. The spatial and temporal relationship of these two distinct reservoirs can be reconstructed from mafic dyke swarms that are sourced from the cratonic mantle and intruded the Archean cratons over time. Trace element abundances of four dyke swarms that intruded the Singhbhum Craton between 2.8 Ga and 1.8 Ga combined with stable Mo and radiogenic Hf and Nd isotopes indicate that the crustal enrichment signature in the parental magma of the dykes was due to earlier enrichment of their respective mantle sources. The covariation of δ 98/95 Mo with mobile/immobile element ratio indicate that hydrous melts originating from recycled surface-derived materials led to metasomatism in the mantle source region of the mafic dykes. A redox-dependent multicomponent element (Mo, Ce) and isotope (δ 98/95 Mo, εHf , εNd) mixing model affirms that the metasomatism of the Singhbhum cratonic mantle was facilitated by reduced low-degree melts derived from recycled sediments and hydrated mafic crust. The mixing model further suggests that the cratonic lithosphere of the Singhbhum Craton was metasomatized in the Paleoarchean around 3.44 Ga, which is synchronous with the formation of Singhbhum granitoids. This is one of the oldest geochemical indications of mantle metasomatism on Earth. The radiogenic isotopes and δ 98/95 Mo reveal that even in the Paleoarchean, recycling of surface-derived reduced material at least locally by horizontal tectonics was active on Earth and this process played a critical role in the formation of stable cratons.