Major Oxide and Trace Element Geochemistry of Basement Rocks in the Ikole–Itapaji Area, Southwestern Nigeria: Implications for Metallic Mineralization Potential
Authors
Department of Geology, Faculty of Physical Science, Ekiti State University, Ado Ekiti (Nigeria)
Department of Geology, Faculty of Physical Science, Ekiti State University, Ado Ekiti (Nigeria)
Article Information
Publication Timeline
Submitted: 2026-07-12
Accepted: 2026-07-17
Published: 2026-07-28
Abstract
This study investigated the geology, petrogenesis, and mineralization potential of the crystalline rocks in the Ikole–Itapaji–Ake-Ako area, southwestern Nigeria, by integrating geological mapping with whole-rock major- and trace-element geochemistry. Detailed field mapping identified the dominant lithological units as migmatite, granite gneiss, granite, charnockite, and pegmatite, with well-developed structural features including foliations, joints, fractures, and quartz veins that provide favourable pathways for hydrothermal fluid circulation. Thirty-five fresh rock samples were collected during field investigations, from which twenty representative samples were selected for whole-rock geochemical analysis based on lithological representation, freshness, mineralogical diversity, textural and structural characteristics, and spatial distribution. Major-element analyses were carried out using Inductively Coupled Plasma–Mass Spectrometry (ICP–MS) following partial multi-acid digestion with hydrochloric acid (HCl), nitric acid (HNO₃), and perchloric acid (HClO₄), combined with lithium metaborate fusion to ensure complete dissolution of refractory silicate minerals and accurate determination of the major rock-forming elements. Major-oxide geochemistry was evaluated using Harker variation diagrams, the A/CNK–A/NK alumina saturation diagram, and the Fe-number discrimination diagram, while trace-element data were interpreted using factor analysis and correlation coefficient analysis. The Harker variation diagrams indicate that the studied rocks evolved predominantly through fractional crystallization, characterized by progressive depletion of MgO, FeOt, CaO, and TiO₂ with increasing SiO₂. The alumina saturation diagram shows that the rocks range from metaluminous to weakly peraluminous compositions, whereas the Fe-number discrimination diagram indicates predominantly magnesian affinities with minor transitional ferroan characteristics. Factor analysis identified Cu–Ni–Co–Fe–Zn as the principal mineralization association, explaining most of the geochemical variability, while As–Th–Ag–Pb constitute a secondary association related to lithological variation and hydrothermal alteration. Correlation coefficient analysis further revealed strong positive relationships among Cu, Ni, Co, Fe, and Zn, indicating a common geochemical source and structurally controlled magmatic–hydrothermal mineralization. The integrated geological and geochemical results demonstrate that the Ikole–Itapaji–Ake-Ako area possesses favourable conditions for sulphide mineralization and provide a valuable framework for future mineral exploration within the Precambrian Basement Complex of southwestern Nigeria.
Keywords
Ikole–Itapaji–Ake-Ako; Basement Complex; geological mapping; major-element geochemistry; trace-element geochemistry; fractional crystallization; factor analysis; mineralization
Downloads
References
1. Adetunla, F. R., Ayodele, O. S., Asowata, I. T., & Olususi, J. (2025). Integrated geological, aeromagnetic, and remote sensing datasets in litho-structural mapping of basement rocks in southwestern Nigeria. Asian Journal of Geological Research, 8(3), 523–553. [Google Scholar] [Crossref]
2. https://doi.org/10.9734/ajoger/2025/v8i3213 [Google Scholar] [Crossref]
3. Ajibade, A. C., Woakes, M., & Rahaman, M. A. (1987). Proterozoic crustal development in the Pan-African regime of Nigeria. In A. Kröner (Ed.), Proterozoic Lithospheric Evolution (Geodynamics Series, Vol. 17, pp. 259–271). Washington, DC: American Geophysical Union. [Google Scholar] [Crossref]
4. https://agupubs.onlinelibrary.wiley.com/doi/10.1029/GD017p0259 [Google Scholar] [Crossref]
5. Barbarin, B. (1999). A review of the relationships between granitoid types, their origins and their geodynamic environments. Lithos, 46(3), 605–626. DOI: https://doi.org/10.1016/S0024-4937(98)00085-1 https://www.sciencedirect.com/science/article/pii/S0024493798000851 [Google Scholar] [Crossref]
6. Chappell, B. W., & White, A. J. R. (2001). Two contrasting granite types: 25 years later. Australian Journal of Earth Sciences, 48(4), 489–499. DOI: https://doi.org/10.1046/j.1440-0952.2001.00882.x [Google Scholar] [Crossref]
7. https://www.tandfonline.com/doi/full/10.1046/j.1440-0952.2001.00882.x [Google Scholar] [Crossref]
8. Clemens, J. D. (2003). S-type granitic magmas—Petrogenetic issues, models and evidence. Earth-Science Reviews, 61(1–2), 1–18. DOI: https://doi.org/10.1016/S0012-8252(02)00107-1 https://www.sciencedirect.com/science/article/pii/S0012825202001071 [Google Scholar] [Crossref]
9. Frost, B. R., Barnes, C. G., Collins, W. J., Arculus, R. J., Ellis, D. J., & Frost, C. D. (2001). A geochemical classification for granitic rocks. Journal of Petrology, 42(11), 2033–2048. [Google Scholar] [Crossref]
10. https://doi.org/10.1093/petrology/42.11.2033 [Google Scholar] [Crossref]
11. Frost, C. D., & Frost, B. R. (2011). On ferroan (A-type) granites: Their compositional variability and modes of origin. Journal of Petrology, 52(1), 39–53. DOI: https://doi.org/10.1093/petrology/egq070 https://academic.oup.com/petrology/article/52/1/39/1468152 [Google Scholar] [Crossref]
12. Hayatu, R. A. (2024). Geochemistry and genetic implications of basement rocks around Makarfi Area, Northwestern Nigeria Basement Complex. FUDMA Journal of Sciences, 8(3), 319–330. [Google Scholar] [Crossref]
13. DOI: https://doi.org/10.33003/fjs-2024-0803-2552 [Google Scholar] [Crossref]
14. Irzon, R. (2013). Contrasting two facies of Muncung Granite in Lingga Regency using major, trace, and rare earth element geochemistry. Indonesian Journal on Geoscience, 2(1), 23–33. [Google Scholar] [Crossref]
15. DOI: https://doi.org/10.17014/ijog.2.1.23-33 [Google Scholar] [Crossref]
16. Moyen, J.-F., Laurent, O., Chelle-Michou, C., Couzinié, S., Vanderhaeghe, O., Zeh, A., Villaros, A., & Gardien, V. (2017). The secular evolution of Earth's mantle and crust as recorded by granitic magmatism. Geological Society, London, Special Publications, 449, 357–386. [Google Scholar] [Crossref]
17. DOI: https://doi.org/10.1144/SP449.8 https://www.lyellcollection.org/doi/10.1144/SP449.8 [Google Scholar] [Crossref]
18. Odewumi, S. C., & Olarewaju, V. O. (2013). Petrogenesis and geotectonic setting of granitic rocks in Idofin–Osi–Eruku Area, Southwestern Nigeria. Journal of Geology & Geosciences, 2(1), 109. [Google Scholar] [Crossref]
19. https://doi.org/10.4172/2329-6755.1000109 [Google Scholar] [Crossref]
20. Ogah, A. J., & Abubakar, F. (2024). Solid mineral potential evaluation using integrated aeromagnetic and aeroradiometric datasets. Scientific Reports, 14, 1637. https://doi.org/10.1038/s41598-024-52270-6 [Google Scholar] [Crossref]
21. Ojo, O. F., Osazuwa, B. I., Chiemeke, C. C., Osumeje, O. J., Oyedele, A. A., Adagunodo, T. A., Oyeyemi, K. D., & Ejiga, E. G. (2024). Classification of the basement complex using aeromagnetic and remote sensing data analyses: Case study of Ekiti State, southwestern Nigeria. Earth Sciences Malaysia, 8(2), 158–162. https://doi.org/10.26480/esmy.02.2024.158.162 [Google Scholar] [Crossref]
22. Olade, M. A. (2020). Mineral Deposits and Exploration Potential of Nigeria. Amsterdam: Elsevier. [Google Scholar] [Crossref]
23. https://books.google.com/books?id=vjj1DwAAQBA [Google Scholar] [Crossref]
24. Oyebamiji, A., Akinola, O., Olaolorun, O., Abdu-Raheem, Y., Adeoye, A., & Oguntuase, M. (2024). Geochemistry, petrogenesis and geological implication of granitic rocks in Igarra Area, Southwestern Nigeria. Energy Exploration & Exploitation, 133(3). DOI: https://doi.org/10.1177/25726838241273519 [Google Scholar] [Crossref]
25. Oyinloye, A. O. (2011). Geology and geotectonic setting of the basement complex rocks in Southwestern Nigeria: Implications on provenance and evolution. DOI: https://doi.org/10.5772/26990 [Google Scholar] [Crossref]
26. Peccerillo, A., & Taylor, S. R. (1976). Geochemistry of Eocene calc-alkaline volcanic rocks from the Kastamonu Area, northern Turkey. Contributions to Mineralogy and Petrology, 58(1), 63–81. [Google Scholar] [Crossref]
27. DOI: https://doi.org/10.1007/BF00384745 [Google Scholar] [Crossref]
28. Rahaman, M. A. (1988). Recent advances in the study of the Basement Complex of Nigeria. In Precambrian Geology of Nigeria (pp. 11–43). Geological Survey of Nigeria. [Google Scholar] [Crossref]
29. https://www.sciepub.com/reference/318092 [Google Scholar] [Crossref]
30. Rollinson, H. R. (1993). Using Geochemical Data: Evaluation, Presentation, Interpretation. Harlow, UK: Longman Scientific & Technical. https://books.google.com/books?id=L44sY6RX8_cC [Google Scholar] [Crossref]
31. Rollinson, H. R., & Pease, V. (2021). Using Geochemical Data: To Understand Geological Processes (2nd ed.). Cambridge: Cambridge University Press. [Google Scholar] [Crossref]
32. DOI: https://doi.org/10.1017/9781108777834 https://www.cambridge.org/core/books/using-geochemical-data/426537667EEB68205371A28DF9B2FFD5 [Google Scholar] [Crossref]
33. Rose, A. W., Hawkes, H. E., & Webb, J. S. (1979). Geochemistry in Mineral Exploration (2nd ed.). London: Academic Press. https://openlibrary.org/books/OL33090211M [Google Scholar] [Crossref]
34. Salako, K. A., Adetona, A. A., Rafiu, A. A., Augie, A. I., Jimoh, M. O., Alkali, A., Muriana, R. A., & Lawrence, J. O. (2024). Integrated geophysical investigation for gold mineralization potential over the southern parts of Kebbi State, northwestern Nigeria. Heliyon, 10(14), e34093. [Google Scholar] [Crossref]
35. https://doi.org/10.1016/j.heliyon.2024.e34093 [Google Scholar] [Crossref]
36. Shand, S. J. (1943). Eruptive Rocks: Their Genesis, Composition, Classification, and Their Relation to Ore-Deposits (2nd rev. ed.). London: Thomas Murby & Co.; New York: John Wiley & Sons. [Google Scholar] [Crossref]
37. WorldCat (1943 Revised 2nd Edition) [Google Scholar] [Crossref]
38. Open Library (1943 2nd Revised Edition) [Google Scholar] [Crossref]
39. Verma, S. P., & Agrawal, S. (2011). New tectonic discrimination diagrams for basic and ultrabasic rocks using high field strength element (HFSE) ratios. Revista Mexicana de Ciencias Geológicas, 28(1), 24–44. https://rmcg.geociencias.unam.mx/index.php/rmcg/article/view/608 [Google Scholar] [Crossref]
Metrics
Views & Downloads
Similar Articles
- Site Selection to Community Handover: Effective Recharge Shaft Development for Rural Water Security in Shetphal, Maharashtra
- Flood Hazard and Prevention Strategies Towards Sustainable Economic Development and Proper Community Planning in Yenagoa, Bayelsa State, Nigeria
- Lineaments Characterization of Shira Complex, Bauchi State Nigeria
- High-Grade Ore in a Decarbonising World: Simandou, Green Steel and the Strategic Repositioning of India’s Iron Ore Sector
- Mineralogical and Physical Characterization of Some Clayey Soils from Parts of Southwestern Nigeria for Ceramic Application.