Decoding the Structural Architecture of the Northern Copper Belt (Carajás Province) and Bacajá Domain Using Airborne Geophysics (Brazil)
Abstract
1. Introduction
2. Geological Setting
2.1. Carajás Domain (Carajás Province)
2.2. Bacajá Domain (Transamazonian Province)

3. Materials and Methods
3.1. Dataset
3.2. Gamma-Ray Spectrometry Techniques
3.3. Magnetic and Gravimetric Technique
3.4. Morpholineament
3.5. Spatial Analysis
4. The Northern Copper Belt: Geological and Metallogenetic Evolution
5. Results
5.1. Regional Magnetic and Gravity Signatures




5.2. Morpholineaments

5.3. Gamma-Ray Spectrometry Signatures
6. Discussion
6.1. Tectonic Framework in the Transition of the Carajás and Bacajá Domains
6.2. Metallogenetic Implications for the Copper Systems in the NCB

7. Conclusions
- Lineaments are linked to deep- to shallow-crustal features, recording a long-lived tectonic evolution with multiple deformation and reactivation events in both Carajás and Bacajá domains.
- The low angular variability of lineament orientations defines a structural continuum between both domains, with minor offsets reflecting differences in crustal properties and reactivation history.
- Persistent structural trends in geophysical and morpholineament data indicate that both domains were affected by the same regional deformation regime, influencing mineralization patterns.
- Potassium (K) and equivalent uranium (eU) anomalies are spatially associated with hydrothermal alteration zones and shear-related structures that control mineralization.
- Structural complexity exerted a first-order control on fluid pathways during IOCG formation, defining the architecture of the hydrothermal system.
- The close spatial relationship between alteration zones and major tectonic structures indicates that these structures acted as both conduits and traps for metal-bearing fluids.
- Integrated geophysical, geological, and structural analyses are essential to improve mineral exploration targeting in the region.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Feature | Carajás Domain | Bacajá Domain |
|---|---|---|
| Lithology | Mesoarchean TTG basement, Neoarchean metavolcano-sedimentary rocks, Neoarchean granitic and mafic–ultramafic suites, Paleoproterozoic granite suites and sedimentary covers [19,35] | Meso- to Neoarchean metamorphic complexes, Siderian greenstone belts, Rhyacian–Orosirian granitoids and charnockites [39] |
| Rock age | Predominantly Archean (>2.5 Ga) with significant events in the Mesoarchean (3.08–2.83 Ga) and Neoarchean (2.76–2.54 Ga) events [35] | Primarily Paleoproterozoic (2.26–1.95 Ga), with older Archean to Siderian basement (3.0–2.5 Ga) [39,47] |
| Host rocks of mineralization | Itacaiúnas Supergroup, Mesoarchean basement granitoids/gneisses, and Neoarchean granitoids and gabbro host the primary mineral systems [6,8,35] | Siderian greenstone belt, Rhyacian granite and metasedimentary sequence [47,48,49] |
| Mineralization | Deposits of IOCG, Fe, Mn, Ni-Co, PGE-Cr, and Au-PGE [6,8,35] | Limited and less well-documented mineral endowment compared to Carajás Province, mainly comprising Au, Mn, Ni and Sn [47,48,49] |
| Structural data | Controlled by three major WNW–ESE to NW–SE strike–slip and transtensional shear zones (Cinzento, Carajás and Canaã) [19] | Dominated by extensive NW–SE to WNW–ESE transcurrent shear zones [39,41,50] |
| Metamorphism | Generally low-grade (greenschist to amphibolite facies), though high-grade events are recorded in the basement | High-grade metamorphism [39] |
| Geochronology | Mesoarchean (3.08–2.83 Ga), Neoarchean (2.76–2.54 Ga), and Paleoproterozoic (2.06 Ga, 1.88 Ga) events [35] | Mesoarchean (3.0–2.5 Ga), Rhyacian magmatism (2.21–1.98 Ga) and metamorphic peaks between 2.23 and 2.05 Ga [39,41,50] |
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Dutra, L.F.; Melo, G.H.C.d.; Ribeiro, B.O.L.; Temporim, F.A. Decoding the Structural Architecture of the Northern Copper Belt (Carajás Province) and Bacajá Domain Using Airborne Geophysics (Brazil). Minerals 2026, 16, 240. https://doi.org/10.3390/min16030240
Dutra LF, Melo GHCd, Ribeiro BOL, Temporim FA. Decoding the Structural Architecture of the Northern Copper Belt (Carajás Province) and Bacajá Domain Using Airborne Geophysics (Brazil). Minerals. 2026; 16(3):240. https://doi.org/10.3390/min16030240
Chicago/Turabian StyleDutra, Luiz Fernandes, Gustavo Henrique Coelho de Melo, Brener Otávio Luiz Ribeiro, and Filipe Altoé Temporim. 2026. "Decoding the Structural Architecture of the Northern Copper Belt (Carajás Province) and Bacajá Domain Using Airborne Geophysics (Brazil)" Minerals 16, no. 3: 240. https://doi.org/10.3390/min16030240
APA StyleDutra, L. F., Melo, G. H. C. d., Ribeiro, B. O. L., & Temporim, F. A. (2026). Decoding the Structural Architecture of the Northern Copper Belt (Carajás Province) and Bacajá Domain Using Airborne Geophysics (Brazil). Minerals, 16(3), 240. https://doi.org/10.3390/min16030240

