- Jonah Jonathan1; Akintola Ojo Adeoye2
- DOI: 10.5281/zenodo.21975630
- SSR Journal of Engineering and Technology (SSRJET)
This study presents whole-rock major oxide geochemical data for
selected Pan-African basement rocks from the Omi-Olori area, Ado–Ekiti,
southwestern Nigeria, with the aim of constraining their petrogenesis, magma
evolution, and tectonic setting. The investigated lithologies include biotite
granite, leucogranite, and granitic gneiss, diorite, and charnockitic rocks.
The geochemical results reveal silica-rich granitoids (SiO₂, 67–72 wt.%)
contrasted with intermediate to mafic compositions in dioritic and charnockitic
rocks (SiO₂, 50–59 wt.%). Harker variation trends indicate systematic decreases
in Fe₂O₃, MgO, CaO, and TiO₂ with increasing SiO₂, suggesting fractional
crystallization as a dominant magmatic process. Alumina saturation indices
(A/NK) vs (A/CNK) show that the granitoids are predominantly peraluminous to
weakly metaluminous, indicating significant crustal contributions, whereas the
diorites and charnockitic rocks exhibit near-metaluminous signatures,
reflecting mantle influence. The AFM diagram defines a calc-alkaline trend,
consistent with magmatism in a convergent to collisional tectonic setting.
Petrogenetically, the rocks represent a genetically related suite involving
mantle-derived dioritic magmas, crustal anatexis producing granites and
leucogranites, and high-temperature deep crustal processes responsible for
charnockitic rocks formation. These features are consistent with magmatic
evolution during the Pan-African orogeny. The study provides insights into
crust–mantle interaction and contributes to the understanding of basement evolution
within the Nigerian segment of the Trans-Saharan Belt.
Keywords: Pan African orogeny, basement complex, major oxides, petrogenesis, Ado–Ekiti.
