Isotopic Disequilibrium Between Migmatites and Protolith: Insights from a Variscan Anatectic Complex (NW of Iberian Variscan Belt, Portugal)
Abstract
1. Introduction
2. Geological Setting, Lithological Descriptions, and Field Relationships
3. Petrography
3.1. Diatexite
3.2. Metatexite
4. Analythical Methods
4.1. Whole-Rock Geochemistry
4.2. Isotopic (Sr-Nd) Geochemistry
4.3. Rutile Geochemistry
4.4. U-Pb Geochronology
4.5. Zircon Oxygen Isotopes
5. Results
5.1. Whole-Rock Geochemistry
5.2. Sr-Nd Isotopic Geochemistry
5.3. Rutile Trace Elements Composition
5.4. U-Pb Geochronology
5.5. Zircon Oxygen Isotopes
6. Discussion
6.1. Petrogenesis of the Pedregal Migmatites
6.2. Significance of the U-Pb Age
6.3. Source of Migmatites
6.4. Isotopic Disequilibrium During Partial Melting
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Brown, M. Introduction to a Virtual Special Issue on Crustal Melting. J. Metamorph. Geol. 2012, 30, 453–456. [Google Scholar] [CrossRef]
- Clemens, J. Melting of the Continental Crust: Fluid Regimes, Melting Reactions, and Source-Rock Fertility; Cambridge University Press: Cambridge, UK, 2006. [Google Scholar] [CrossRef]
- Brown, M.; Korhonen, F.J.; Siddoway, C.S. Organizing Melt Flow through the Crust. Elements 2011, 7, 261–266. [Google Scholar] [CrossRef]
- Solar, G.S.; Brown, M. Petrogenesis of Migmatites in Maine, USA: Possible Source of Peraluminous Leucogranite in Plutons? J. Petrol. 2001, 42, 789–823. [Google Scholar] [CrossRef]
- Milord, I.; Sawyer, E.W.; Brown, M. Formation of Diatexite Migmatite and Granite Magma during Anatexis of Semi-Pelitic Metasedimentary Rocks: An Example from St. Malo, France. J. Petrol. 2001, 42, 487–505. [Google Scholar] [CrossRef]
- Villaros, A.; Laurent, O.; Couzinié, S.; Moyen, J.-F.; Mintrone, M. Plutons and Domes: The Consequences of Anatectic Magma Extraction—Example from the Southeastern French Massif Central. Int. J. Earth Sci. 2018, 107, 2819–2842. [Google Scholar] [CrossRef]
- Trap, P.; Roger, F.; Cenki-Tok, B.; Paquette, J.L. Timing and Duration of Partial Melting and Magmatism in the Variscan Montagne Noire Gneiss Dome (French Massif Central). Int. J. Earth Sci. 2017, 106, 453–476. [Google Scholar] [CrossRef]
- Vanderhaeghe, O. Migmatites, Granites and Orogeny: Flow Modes of Partially-Molten Rocks and Magmas Associated with Melt/Solid Segregation in Orogenic Belts. Tectonophysics 2009, 477, 119–134. [Google Scholar] [CrossRef]
- Holtz, F.; Barbey, P. Genesis of Peraluminous Granites II. Mineralogy and Chemistry of the Tourem Complex (North Portugal). Sequential Melting vs. Restite Unmixing. J. Petrol. 1991, 32, 959–978. [Google Scholar] [CrossRef]
- Valle Aguado, B.; Azevedo, M.R.; Santos, J.; Nolan, J. O Complexo Migmatítico de Mundão (Viseu, Norte de Portugal). VIII Congr. Nac. Geol. 2010, 16, 1–4. [Google Scholar]
- Ribeiro, M.A.; Sant’Ovaia, H.; Dória, A. Litologias Gnaisso-Migmatíticas Da Faixa Lavadores-Madalena: Possível Significado Das Paragéneses Com Hercinite. Simpósio Model. Sist. Geológicos 2011, 343–351. [Google Scholar]
- Areias, M.; Ribeiro, M.A.; Santos, J.F.; Dória, A. LP-HT Anatectic Processes and Lithological Heterogeneity in the Mindelo Migmatite Complex (NW Portugal). Estud. Geológicos 2014, 70, e017. [Google Scholar] [CrossRef]
- Ferreira, J.A.; Ribeiro, M.A.; Martins, H.C.B. The Pedregal Granite (Portugal): Petrographic and Geochemical Characterization of a Peculiar Granitoid. Estud. Geológicos 2014, 70, e019. [Google Scholar] [CrossRef]
- Ferreira, J.A.; Mata, J.; Bento dos Santos, T.; Pereira, I. The Role of Melting on the Geochemical Evolution and Isotopic Variability of an Anatectic Complex in the Iberian Variscides. Lithos 2020, 378–379, 105769. [Google Scholar] [CrossRef]
- Pereira, I.; Dias, R.; Bento dos Santos, T.; Mata, J. Exhumation of a Migmatite Complex along a Transpressive Shear Zone: Inferences from the Variscan Juzbado-Penalva Do Castelo Shear Zone (Central Iberian Zone). J. Geol. Soc. 2017, 174, 1004–1018. [Google Scholar] [CrossRef]
- Areias, M. Petrogenesis of a Variscan Migmatite Complex (NW Portugal): Petrography, Geochemistry and Fluids. Ph.D. Thesis, University of Porto, Porto, Portugal, 2014. [Google Scholar]
- Damas, A. O Complexo Migmatítico de Bemposta (NE Portugal): Alguns Dados Petrográficos, Geoquímicos e Isotópicos. Master’s Thesis, University of Aveiro, Aveiro, Portugal, 2017. [Google Scholar]
- Zeng, L. Nd Isotope Disequilibrium during Crustal Anatexis: A Record from the Goat Ranch Migmatite Complex, Southern Sierra Nevada Batholith, California. Geology 2005, 33, 53–56. [Google Scholar] [CrossRef]
- Iles, K.A. Isotopic Disequilibrium in Granitic Systems: The Origins of Heterogeneity in Granites and Implications for Partial Melting in the Crust and Petrogenetic Models. Ph.D. Thesis, University of Melboune, Melbourne, Australia, 2017. [Google Scholar]
- Wolf, M.; Romer, R.L.; Glodny, J. Isotope Disequilibrium during Partial Melting of Metasedimentary Rocks. Geochim. Cosmochim. Acta 2019, 257, 163–183. [Google Scholar] [CrossRef]
- Yang, L.; Wang, J.M.; Liu, X.C.; Khanal, G.P.; Wu, F.Y. Sr-Nd-Hf Isotopic Disequilibrium During the Partial Melting of Metasediments: Insight From Himalayan Leucosome. Front. Earth Sci. 2022, 10, 891960. [Google Scholar] [CrossRef]
- Barbero, L.; Villaseca, C.; Rogers, G.; Brown, P.E. Geochemical and Isotopic Disequilibrium in Crustal Melting: An Insight from the Anatectic Granitoids from Toledo, Spain. J. Geophys. Res. 1995, 100, 15745–15765. [Google Scholar] [CrossRef]
- Martínez Catalán, J.R.; Rubio Pascual, F.J.; Montes, A.D.; Fernández, R.D.; Barreiro, J.G.; Dias Da Silva, Í.; Clavijo, E.G.; Ayarza, P.; Alcock, J.E. The Late Variscan HT/LP Metamorphic Event in NW and Central Iberia: Relationships to Crustal Thickening, Extension, Orocline Development and Crustal Evolution. Geol. Soc. Lond. Spec. Publ. 2014, 405, 225–247. [Google Scholar] [CrossRef]
- Costa, M.M.; Neiva, A.M.R.; Azevedo, M.R.; Corfu, F. Distinct Sources for Syntectonic Variscan Granitoids: Insights from the Aguiar Da Beira Region, Central Portugal. Lithos 2014, 196–197, 83–98. [Google Scholar] [CrossRef]
- Azevedo, M.R.; Valle Aguado, B. Origem e Instalação de Granitóides Variscos Na Zona Centro-Ibérica. In Geologia de Portugal. Volume I—Geologia Pré-mesozóica de Portugal; Dias, R., Araújo, A., Terrinha, P., Kullberg, J.C., Eds.; Escolar Editora: Lisbon, Portugal, 2013; pp. 377–401. [Google Scholar]
- Talavera, C.; Montero, P.; Martínez Poyatos, D.; Williams, I.S. Ediacaran to Lower Ordovician Age for Rocks Ascribed to the Schist–Graywacke Complex (Iberian Massif, Spain): Evidence from Detrital Zircon SHRIMP U–Pb Geochronology. Gondwana Res. 2012, 22, 928–942. [Google Scholar] [CrossRef]
- Sousa, M.B.; Sequeira, A.J.D. O Limite Precâmbrico—Câmbrico Na Zona Centro Ibérica, Em Portugal. XII Reun. Geol. Oeste Penins. 1993, I, 17–28. [Google Scholar]
- Bento dos Santos, T.; Rodrigues, J.F.; Castro, P.; Cotrim, B.; Pereira, I.; Ferreira, J.A.; Meireles, C.; Ferreira, N.; Ferreira, P.; Ribeiro, A.; et al. Exhumation of an Anatectic Complex by Channel Flow and Extrusion Tectonics: Structural and Metamorphic Evidence from the Porto–Viseu Metamorphic Belt, Central-Iberian Zone. Int. J. Earth Sci. 2021, 110, 2179–2201. [Google Scholar] [CrossRef]
- Ribeiro, M.A.; Martins, H.C.B.; Sant’ovaia, H.; Dória, A.; Ferreira, J.; Areias, M. Evolução Tectono-Metamórfica, Migmatização e Magmatismo Sin-Tectónico Na Região Do Porto (NW Portugal) Tectono-Metamorphic Evolution, Migmatization and Syn-Tectonic Magmatism from Porto Region (NW Portugal). Comun. Geológicas 2014, 101, 297–300. [Google Scholar]
- Sousa, M.B.; Sequeira, A.J.D. Carta Geológica de Portugal Na Escala 1/50.000; Notícia Explicativa Da Folha 10-D (Alijó); Serviços Geologicos de Portugal: Lisboa, Portugal, 1987. [Google Scholar]
- Almeida, A.; Santos, J.F.; Noronha, F. Contribution of Sm-Nd and RB-Sr Isotope Systems to the Petrogenetic Study of the Peraluminous Two-Mica Granite Pluton in Oporto Town (Nw Portugal). Comun. Geol. 2014, 101, 27–30. [Google Scholar]
- Pinto, M.S. O Granito Gnáissico de Fânzeres (Porto, Portugal)—Idade e Caracterização Geoquímica Geral. Mem. e Not. Mus. Lab. Mineral. Geol. Univ. Coimbra. 1984, 98, 231–242. [Google Scholar]
- Janoušek, V.; Farrow, C.M.; Erban, V. Interpretation of Whole-Rock Geochemical Data in Igneous Geochemistry: Introducing Geochemical Data Toolkit (GCDkit). J. Petrol. 2006, 47, 1255–1259. [Google Scholar] [CrossRef]
- Bea, F.; Fershtater, G.B.; Montero, P.; Smirnov, V.N.; Molina, J.F. Deformation-Driven Differentiation of Granitic Magma: The Stepninsk Pluton of the Uralides, Russia. Lithos 2005, 81, 209–233. [Google Scholar] [CrossRef]
- Montero, M.P.; Bea, F.; Corretge, L.G.; Floor, P.; Whitehouse, M.J. U-Pb Ion Microprobe Dating and Sr-Nd Isotope Geology of the Galiñeiro Igneous Complex. A Model for the Peraluminous/Peralkaline Duality of the Cambro-Ordovician Magmatism of Iberia. Lithos 2008, 107, 227–238. [Google Scholar] [CrossRef]
- Claoue-Long, J.C.; Compston, W.; Roberts, J.; Fanning, C.M. Two Carboniferous Ages: A Comparison of SHRIMP Zircon Dating with Conventional Zircon Ages and 40Ar/39Ar Analysis. In Geochronology Time Scales and Global Stratigraphic Correlation; Berggren, W.A., Kent, D.V., Aubry, M.P., Hardenbol, J., Eds.; SEPM (Society for Sedimentary Geology) Special Publication: Tulsa, OK, USA, 1995; pp. 3–21. [Google Scholar]
- Black, L.P.; Kamo, S.L.; Allen, C.M.; Aleinikoff, J.A.; Davis, D.W.; Korsch, J.R.; Foudolis, C. TEMORA 1: A New Zircon Standard for Phanerozoic U-Pb Geochronology. Chem. Geol. 2003, 200, 155–170. [Google Scholar] [CrossRef]
- Williams, I.S. U-Th-Pb Geochronology by Ion Microprobe. In Applications of Microanalytical Techniques to Understanding Mineralizing Processes; McKibben, M.A., Shanks, W.C., III, Ridley, W.I., Eds.; Reviews in Economic Geology: Littleton, CO, USA, 1998; pp. 1–35. [Google Scholar]
- Williams, I.S.; Hergt, J.M. U-Pb Dating of Tasmanian Dolerites: A Cautionary Tale of SHRIMP Analysis of High-U Zircon. In Proceedings of the Beyond 2000: New Frontiers in Isotope Geoscience; Woodhead, J.D., Hergt, J.M., Noble, W.P., Eds.; New Frontiers in Isotope Geoscienc: Victoria, Australia, 2000; pp. 185–188. [Google Scholar]
- Frost, B.R. A Geochemical Classification for Granitic Rocks. Journal of Petrology 2001, 42, 2033–2048. [Google Scholar] [CrossRef]
- Bonin, B.; Janoušek, V.; Moyen, J.-F. Chemical Variation, Modal Composition and Classification of Granitoids. Geol. Soc. Lond. Spec. Publ. 2020, 491, 9–51. [Google Scholar] [CrossRef]
- Bea, F. Residence of REE, Y, Th and U in Granites and Crustal Protoliths; Implications for the Chemistry of Crustal Melts. J. Petrol. 1996, 37, 521–552. [Google Scholar] [CrossRef]
- Boynton, W.V. Cosmochemistry of the Rare Earth Elements: Meteorite Studies. In Developments in Geochemistry; Elsevier: Amsterdam, The Netherlands, 1984; pp. 63–114. [Google Scholar]
- Ugidos, J.M.; Sánchez-Santos, J.M.; Barba, P.; Valladares, M.I. Upper Neoproterozoic Series in the Central Iberian, Cantabrian and West Asturian Leonese Zones (Spain): Geochemical Data and Statistical Results as Evidence for a Shared Homogenised Source Area. Precambrian Res. 2010, 178, 51–58. [Google Scholar] [CrossRef]
- Beetsma, J. The Late Proterozoic/Paleozoic and Hercynian Crustal Evolution of the Iberian Massif, N Portugal. Ph.D. Thesis, Vrije University, Amsterdam, The Netherlands, 1995. [Google Scholar]
- Teixeira, R.J.S. Mineralogia, Petrologia e Geoquímica Dos Granitos e Seus Encraves Da Região de Carrazeda de Ansiães. Ph.D. Thesis, Universidade de Trás-os-Montes e Alto Douro, Vila Real, Portugal, 2008. [Google Scholar]
- Villaseca, C.; Merino, E.; Oyarzun, R.; Orejana, D.; Pérez-Soba, C.; Chicharro, E. Contrasting Chemical and Isotopic Signatures from Neoproterozoic Metasedimentary Rocks in the Central Iberian Zone (Spain) of Pre-Variscan Europe: Implications for Terrane Analysis and Early Ordovician Magmatic Belts. Precambrian Res. 2014, 245, 131–145. [Google Scholar] [CrossRef]
- Tassinari, C.C.G.; Medina, J.; Pinto, M.S. Rb-Sr and Sm-Nd geochronology and isotope geochemistry of Central Iberian metasedimentary rocks (Portugal). Neth. J. Geosci. 1996, 75, 69–79. [Google Scholar]
- Montero, P.; Talavera, C.; Bea, F. Geochemical, Isotopic, and Zircon (U-Pb, O, Hf Isotopes) Evidence for the Magmatic Sources of the Volcano-Plutonic Ollo de Sapo Formation, Central Iberia. Geol. Acta 2017, 15, 245–260. [Google Scholar] [CrossRef]
- Nebel, O.; Scherer, E.E.; Mezger, K. Evaluation of the 87Rb Decay Constant by Age Comparison against the U–Pb System. Earth Planet. Sci. Lett. 2011, 301, 1–8. [Google Scholar] [CrossRef]
- Lugmair, G.W.; Marti, K. Lunar Initial 143Nd/144Nd: Differential Evolution of the Lunar Crust and Mantle. Earth Planet. Sci. Lett. 1978, 39, 349–357. [Google Scholar] [CrossRef]
- Jacobsen, S.B.; Wasserburg, G.J. Sm-Nd Isotopic Evolution of Chondrites. Earth Planet. Sci. Lett. 1980, 50, 139–155. [Google Scholar] [CrossRef]
- Liew, T.; Hofmann, A. Precambrian Crustal Components, Plutonic Associations, Plate Environment of the Hercynian Fold Belt of Central Europe: Indications from a Nd and Sr Isotopic Study. Contrib. Mineral. Petrol. 1988, 98, 129–138. [Google Scholar] [CrossRef]
- Meinhold, G. Rutile and Its Applications in Earth Sciences. Earth. Sci. Rev. 2010, 102, 1–28. [Google Scholar] [CrossRef]
- Zack, T.; Moraes, R.; Kronz, A. Temperature Dependence of Zr in Rutile: Empirical Calibration of a Rutile Thermometer. Contrib. Mineral. Petrol. 2004, 148, 471–488. [Google Scholar] [CrossRef]
- Watson, E.B.; Wark, D.A.; Thomas, J.B. Crystallization Thermometers for Zircon and Rutile. Contrib. Mineral. Petrol. 2006, 151, 413–433. [Google Scholar] [CrossRef]
- Tomkins, H.S.; Powell, R.; Ellis, D.J. The Pressure Dependence of the Zirconium-in-Rutile Thermometer. J. Metamorph. Geol. 2007, 25, 703–713. [Google Scholar] [CrossRef]
- Corfu, F.; Hanchar, J.M.; Hoskin, P.W.O. Atlas of Zircon Textures. Rev. Miner. Geochem. 2003, 53, 469–500. [Google Scholar] [CrossRef]
- Harley, S.L.; Kelly, N.M.; Möller, A. Zircon Behaviour and the Thermal Histories of Mountain Chains. Elements 2007, 3, 25–30. [Google Scholar] [CrossRef]
- Zheng, D.; Wu, S.; Ma, C.; Xiang, L.; Hou, L.; Chen, A.; Hou, M. Zircon Classification from Cathodoluminescence Images Using Deep Learning. Geosci. Front. 2022, 13, 101436. [Google Scholar] [CrossRef]
- Milord, I.; Sawyer, E.W. Schlieren Formation in Diatexite Migmatite: Examples from the St Malo Migmatite Terrane, France. J. Metamorph. Geol. 2003, 21, 347–362. [Google Scholar] [CrossRef]
- Vernon, R.H.; Clarke, G.L. Principles of Metamorphic Petrology; Cambridge University Press: Cambridge, UK, 2008. [Google Scholar]
- Sawyer, E.W. Atlas of Migmatites; NRC Research Press and Mineralogical Association of Canada: Ottawa, ON, Canada, 2008. [Google Scholar]
- Sylvester, P.J. Post-Collisional Strongly Peraluminous Granites. Lithos 1998, 45, 29–44. [Google Scholar] [CrossRef]
- Triebold, S.; von Eynatten, H.; Luvizotto, G.L.; Zack, T. Deducing Source Rock Lithology from Detrital Rutile Geochemistry: An Example from the Erzgebirge, Germany. Chem. Geol. 2007, 244, 421–436. [Google Scholar] [CrossRef]
- Clemens, J.D.; Stevens, G.; Bryan, S.E. Conditions during the Formation of Granitic Magmas by Crustal Melting—Hot or Cold; Drenched, Damp or Dry? Earth Sci. Rev. 2020, 200, 102982. [Google Scholar] [CrossRef]
- Inger, S.; Harris, N. Geochemical Constraints on Leukogranite Magmatism in the Langtang Valley, Nepal Himalaya. J. Petrol. 1993, 34, 345–368. [Google Scholar] [CrossRef]
- Montel, J.M.; Weber, C.; Pichavant, M. Biotite-Sillimanite-Spinel Assemblages in High-Grade Metamorphic Rocks: Occurrences, Chemographic Analysis and Thermobarometric Interest. Bull. Mineral. 1986, 109, 555–573. [Google Scholar] [CrossRef]
- Bucher, K.; Grapes, R. Petrogenesis of Metamorphic Rocks, 8th ed.; Springer: Berlin/Heidelberg, Germany, 2011; Volume 53. [Google Scholar]
- Gaeta, M.; Giuliani, A.; Di Rocco, T.; Tecchiato, V.; Perinelli, C.; Kamenetsky, V.S. Isotopic Disequilibrium in Migmatitic Hornfels of the Gennargentu Igneous Complex (Sardinia, Italy) Records the Formation of Low 87Sr/86Sr Melts from a Mica-Rich Source. J. Petrol. 2018, 59, 1309–1328. [Google Scholar] [CrossRef]
- Watson, E.B.; Harrison, T.M. Zircon Saturation Revisited: Temperature and Composition Effects in a Variety of Crustal Magma Types. Earth Planet. Sci. Lett. 1983, 64, 295–304. [Google Scholar] [CrossRef]
- Miller, C.F.; McDowell, S.M.; Mapes, R.W. Hot and Cold Granites: Implications of Zircon Saturation Temperatures and Preservation of Inheritance. Geology 2003, 31, 529–532. [Google Scholar] [CrossRef]
- Li, Y.; Xie, H.; Dong, C.; Wang, S.; Wan, Y. Zircon Evolution from Migmatite to Crustally-Derived Granite: A Case Study of Late Neoarchean Migmatite in the Yishan Area, Western Shandong, North China Craton. Gondwana Res. 2022, 112, 82–104. [Google Scholar] [CrossRef]
- Sawyer, E.W.; Cesare, B.; Brown, M. When the Continental Crust Melts. Elements 2011, 7, 229–234. [Google Scholar] [CrossRef]
- Rao, C.V.D. Metapelitic Migmatites From Pangidi Granulite Complex, Eastern Ghats Belt, India: Petrological Constraints on Crustal Melting and Tectonic Exhumation. Gondwana Res. 2000, 3, 105–117. [Google Scholar] [CrossRef]
- Ferreira, J.A.; Pereira, I.; Bento dos Santos, T.; Mata, J. U–Pb Age Constraints on the Protolith, Cooling and Exhumation of a Variscan Middle Crust Migmatite Complex from the Central Iberian Zone: Insights into the Variscan Metamorphic Evolution and Ediacaran Palaeogeographic Implications. J. Geol. Soc. 2022, 179, jgs2021-072. [Google Scholar] [CrossRef]
- Valle Aguado, B.; Azevedo, M.R.; Schaltegger, U.; Martínez Catalán, J.R.; Nolan, J. U-Pb Zircon and Monazite Geochronology of Variscan Magmatism Related to Syn-Convergence Extension in Central Northern Portugal. Lithos 2005, 82, 169–184. [Google Scholar] [CrossRef]
- Alcock, J.E.; Martínez, J.R.; Rubio, F.J.; Díez, A.; Díez, R.; Gómez, J.; Arenas, R.; Dias, Í.; González, E. Tectonophysics 2-D Thermal Modeling of HT—LP Metamorphism in NW and Central Iberia: Implications for Variscan Magmatism, Rheology of the Lithosphere and Orogenic Evolution. Tectonophysics 2015, 657, 21–37. [Google Scholar] [CrossRef]
- Valverde-Vaquero, P.; Díez Balda, M.A.; Díez Montes, A.; Dörr, W.; Escuder-Viruete, J.; González-Clavijo, E.; Maluski, H.; Rodríguez-Fernández, L.R.; Rubio, F.; Villar, P. Timing of Variscan Metamorphism and the Central Iberian Paradox. Geophys. Res. Abstr. Eur. Geosci. Union 2006, 8, 01309. [Google Scholar]
- Pereira, M.F.; Linnemann, U.; Hofmann, M.; Chichorro, M.; Solá, A.R.; Medina, J.; Silva, J.B. The Provenance of Late Ediacaran and Early Ordovician Siliciclastic Rocks in the Southwest Central Iberian Zone: Constraints from Detrital Zircon Data on Northern Gondwana Margin Evolution during the Late Neoproterozoic. Precambrian Res. 2012, 192–195, 166–189. [Google Scholar] [CrossRef]
- Pereira, M.F. Potential Sources of Ediacaran Strata of Iberia: A Review. Geodin. Acta 2015, 27, 1–14. [Google Scholar] [CrossRef]
- Silva, D.; Rodrigues, E.; Martins, H.C.B.; Ribeiro, M.A. New Insights into Structure, Petrography and Geochemistry of Fânzeres Granite (Porto, NW Portugal) Novos Dados Sobre a Estrutura, Petrografia e Geoquímica Do Granito de Fânzeres (Porto, NW de Portugal). Comun. Geológicas 2016, 103, 131–135. [Google Scholar]
- Hartnady, M.I.H.; Kirkland, C.L.; Martin, L.; Clark, C.; Smithies, R.H.; Spaggiari, C. V Zircon Oxygen and Hafnium Isotope Decoupling during Regional Metamorphism: Implications for the Generation of Low Δ18O Magmas. Contrib. Mineral. Petrol. 2019, 175, 9. [Google Scholar] [CrossRef]
- Oliveira, J.T.; Pereira, E.; Ramalho, M.; Antunes, M.T.; Monteiro, J.H. Geological Map of Portugal at 1/500,000 Scale—North Sheet; Geologic Survey of Portugal: Amadora, Portugal, 1992. [Google Scholar]
- Barbero, L. Granulite-Facies Metamorphism in the Anatectic Complex of Toledo, Spain: Late Hercynian Tectonic Evolution by Crustal Extension. J. Geol. Soc. 1995, 152, 365–382. [Google Scholar] [CrossRef]
- Ayres, M.; Harris, N. REE Fractionation and Nd-Isotope Disequilibrium during Crustal Anatexis: Constraints from Himalayan Leucogranites. Chem. Geol. 1997, 139, 249–269. [Google Scholar] [CrossRef]
- Davies, G.R.; Tommasini, S. Isotopic Disequilibrium during Rapid Crustal Anatexis: Implications for Petrogenetic Studies of Magmatic Processes. Chem. Geol. 2000, 162, 169–191. [Google Scholar] [CrossRef]
- Jung, S. Isotopic Equilibrium/Disequilibrium in Granites, Metasedimentary Rocks and Migmatites (Damara Orogen, Namibia)—A Consequence of Polymetamorphism and Melting. Lithos 2005, 84, 168–184. [Google Scholar] [CrossRef]
- Zeng, L.; Asimow, P.D.; Saleeby, J.B. Coupling of Anatectic Reactions and Dissolution of Accessory Phases and the Sr and Nd Isotope Systematics of Anatectic Melts from a Metasedimentary Source. Geochim. Cosmochim. Acta 2005, 69, 3671–3682. [Google Scholar] [CrossRef]
- Perini, G.; Cesare, B.; Gömez-Pugnaire, M.T.; Ghezzi, L.; Tommasini, S. Armouring Effect on Sr-Nd Isotopes during Disequilibrium Crustal Melting: The Case Study of Frozen Migmatites from El Hoyazo and Mazarrón, SE Spain. Eur. J. Mineral. 2009, 21, 117–131. [Google Scholar] [CrossRef]
- Villaros, A.; Stevens, G.; Moyen, J.F.; Buick, I.S. The Trace Element Compositions of S-Type Granites: Evidence for Disequilibrium Melting and Accessory Phase Entrainment in the Source. Contrib. Mineral. Petrol. 2009, 158, 543–561. [Google Scholar] [CrossRef]
- Farina, F.; Stevens, G. Lithos Source Controlled 87 Sr / 86 Sr Isotope Variability in Granitic Magmas: The Inevitable Consequence of Mineral-Scale Isotopic Disequilibrium in the Protolith. Lithos 2011, 122, 189–200. [Google Scholar] [CrossRef]
- Macera, P.; Di Pisa, A.; Gasperini, D. Geochemical and Sr-Nd Isotope Disequilibria during Multi-Stage Anatexis in a Metasedimentary Hercynian Crust. Eur. J. Mineral. 2011, 23, 207–222. [Google Scholar] [CrossRef]
- Bea, F.; Pereira, M.D.; Stroh, A. Mineral/Leucosome Trace-Element Partitioning in a Peraluminous Migmatite (a Laser Ablation-ICP-MS Study). Chem. Geol. 1994, 117, 291–312. [Google Scholar] [CrossRef]
- Bea, F. Controls on the Trace Element Composition of Crustal Melts. Trans. R Soc. Edinb. Earth Sci. 1996, 87, 33–41. [Google Scholar] [CrossRef]
- Bea, F.; Montero, P.; Barcos, L.; Cambeses, A.; Molina, J.F.; Morales, I. Understanding Nd Model Ages of Granite Rocks: The Effects of the 147Sm/144Nd Variability during Partial Melting and Crystallization. Lithos 2023, 436–437, 106940. [Google Scholar] [CrossRef]















| Sample | P1 | P2 | P3 | P6 | P7 | P8 | P9 | P10 |
|---|---|---|---|---|---|---|---|---|
| Lithology | DTX | DTX | DTX | DTX | DTX | MTX | MTX | MTX |
| Longitude | −8°32′37.79″ | −8°32′44.53″ | −8°32′16.44″ | −8°31′51.60″ | −8°31′33.98″ | −8°32′11.34″ | −8°32′11.34″ | −8°31′40.77″ |
| Latitude | 41°7′10.55″ | 41°7′18.27″ | 41°7′23.53″ | 41°7′5.62″ | 41°6′56.22″ | 41°6′33.78″ | 41°6′33.78″ | 41°6′12.33″ |
| SiO2 | 65.28 | 68.57 | 69.18 | 65.30 | 66.38 | 72.27 | 73.79 | 74.25 |
| Al2O3 | 15.71 | 16.12 | 15.98 | 16.68 | 16.46 | 14.43 | 14.62 | 14.57 |
| Fe2O3t | 3.68 | 2.93 | 2.50 | 2.59 | 2.28 | 1.12 | 1.21 | 1.08 |
| MnO | 0.04 | 0.02 | 0.01 | 0.02 | 0.01 | 0.02 | 0.02 | 0.02 |
| MgO | 1.00 | 0.81 | 0.73 | 0.80 | 0.71 | 0.25 | 0.25 | 0.20 |
| CaO | 1.58 | 0.70 | 0.52 | 0.65 | 0.33 | 0.62 | 0.62 | 0.50 |
| FeO | 3.35 | 2.67 | 2.28 | 2.36 | 2.07 | 1.02 | 1.10 | 0.98 |
| Na2O | 2.89 | 2.21 | 2.01 | 2.50 | 2.03 | 3.25 | 3.46 | 3.32 |
| K2O | 5.21 | 5.96 | 5.69 | 5.63 | 5.72 | 4.46 | 4.24 | 4.11 |
| TiO2 | 0.89 | 0.75 | 0.69 | 0.70 | 0.68 | 0.12 | 0.12 | 0.10 |
| P2O5 | 0.43 | 0.50 | 0.52 | 0.55 | 0.42 | 0.30 | 0.31 | 0.29 |
| LOI | 1.74 | 2.30 | 2.55 | 2.79 | 3.30 | 1.29 | 1.50 | 1.40 |
| Total | 98.44 | 100.90 | 100.40 | 98.21 | 98.33 | 98.12 | 100.10 | 99.84 |
| Ba | 1005 | 677 | 533 | 527 | 527 | 322 | 293 | 258 |
| Sr | 228 | 113 | 71 | 94 | 84 | 62 | 56 | 40 |
| Y | 14 | 12 | 11 | 12 | 9 | 10 | 9 | 8 |
| Zr | 435 | 416 | 388 | 398 | 389 | 56 | 57 | 51 |
| Cr | 50 | 30 | 60 | 50 | 40 | <20 | <20 | <20 |
| Co | 6 | 4 | 2 | 3 | 3 | 1 | 1 | 1 |
| Ni | <20 | <20 | <20 | <20 | <20 | <20 | <20 | <20 |
| Cu | <10 | <10 | <10 | <10 | <10 | <10 | <10 | <10 |
| Zn | 50 | 160 | 120 | 140 | 110 | 50 | 60 | 40 |
| Ga | 26 | 29 | 29 | 28 | 28 | 17 | 17 | 17 |
| Ge | 1 | 2 | 1 | 2 | 1 | 2 | 2 | 2 |
| As | <5 | <5 | 8 | 53 | <5 | <5 | <5 | <5 |
| Rb | 266 | 344 | 333 | 405 | 385 | 174 | 164 | 176 |
| Nb | 9 | 6 | 5 | 5 | 5 | 7 | 7 | 7 |
| Mo | <2 | <2 | <2 | <2 | <2 | <2 | <2 | <2 |
| Ag | 3.6 | 3.1 | 3.3 | 3.8 | 3.4 | <0.5 | 0.6 | <0.5 |
| In | <0.2 | <0.2 | <0.2 | <0.2 | <0.2 | <0.2 | <0.2 | <0.2 |
| Sn | <1 | 2 | 3 | 5 | 4 | 6 | 6 | 10 |
| Sb | <0.5 | 0.7 | 2.6 | 1.9 | 1.2 | <0.5 | <0.5 | <0.5 |
| Cs | 5.5 | 4.9 | 4.4 | 63.8 | 6.1 | 7.8 | 7.6 | 7.3 |
| La | 114 | 130 | 101 | 91.6 | 98.9 | 9.6 | 10.4 | 8.2 |
| Ce | 246 | 320 | 264 | 243 | 260 | 18.8 | 20.6 | 16 |
| Pr | 30.7 | 41.5 | 37.6 | 35.3 | 37.1 | 2.37 | 2.51 | 2.03 |
| Nd | 110 | 156 | 146 | 142 | 148 | 8.9 | 9 | 7.7 |
| Sm | 16.2 | 22.2 | 22.2 | 22.3 | 22.1 | 2.4 | 2.5 | 2.1 |
| Eu | 1.39 | 1.03 | 0.89 | 0.89 | 0.95 | 0.45 | 0.43 | 0.41 |
| Gd | 7.1 | 7.6 | 7.2 | 8.7 | 7.7 | 2.5 | 2.7 | 2 |
| Tb | 0.7 | 0.6 | 0.6 | 0.7 | 0.6 | 0.4 | 0.4 | 0.3 |
| Dy | 3.4 | 3 | 2.6 | 2.9 | 2.5 | 2.1 | 2.1 | 1.5 |
| Ho | 0.5 | 0.4 | 0.4 | 0.4 | 0.4 | 0.3 | 0.3 | 0.2 |
| Er | 1.4 | 1.1 | 1 | 1.1 | 0.9 | 0.6 | 0.7 | 0.6 |
| Tm | 0.18 | 0.14 | 0.14 | 0.15 | 0.12 | 0.09 | 0.1 | 0.09 |
| Yb | 1 | 0.8 | 0.8 | 0.8 | 0.7 | 0.5 | 0.5 | 0.5 |
| Lu | 0.15 | 0.1 | 0.12 | 0.13 | 0.1 | 0.07 | 0.07 | 0.06 |
| Hf | 10.8 | 10.5 | 10.3 | 10 | 9.7 | 1.7 | 1.7 | 1.5 |
| Ta | 0.6 | 0.4 | 0.3 | 0.4 | 0.3 | 0.8 | 0.9 | 1.3 |
| W | <1 | 2 | 3 | <1 | <1 | 1 | <1 | 2 |
| Tl | 1.5 | 2.1 | 2.1 | 2.6 | 2.3 | 1 | 0.9 | 1 |
| Pb | 57 | 47 | 56 | 39 | 32 | 31 | 34 | 28 |
| Bi | <0.4 | <0.4 | <0.4 | <0.4 | <0.4 | 1 | 0.7 | 1 |
| Th | 72.3 | 133 | 137 | 130 | 135 | 4.2 | 4.6 | 3.5 |
| U | 8.8 | 13.4 | 12 | 9.9 | 12.8 | 4.5 | 4.7 | 5.4 |
| Sample | P1 | P2 | P3 | P6 | P7 | P8 | P9 | P10 |
|---|---|---|---|---|---|---|---|---|
| Lithology | DTX | DTX | DTX | DTX | DTX | MTX | MTX | MTX |
| Rb (ppm) | 266 | 383 | 321 | 403 | 383 | 174 | 164 | 171 |
| Sr (ppm) | 228 | 109 | 68 | 93 | 82 | 62 | 56 | 37 |
| 87Rb/86Sr | 3.3804 | 10.1900 | 13.7074 | 12.6695 | 13.6581 | 8.1639 | 8.5228 | 13.4654 |
| ±2δ | 0.10 | 0.29 | 0.39 | 0.36 | 0.39 | 0.23 | 0.24 | 0.38 |
| 87Sr/86Sr | 0.72249 | 0.75125 | 0.77340 | 0.76940 | 0.77241 | 0.76314 | 0.76763 | 0.80116 |
| ±2δ | 0.00002 | 0.00002 | 0.00002 | 0.00002 | 0.00003 | 0.00002 | 0.00003 | 0.00002 |
| 87Sr/86Sr313 | 0.7077 | 0.7067 | 0.7135 | 0.7140 | 0.7127 | 0.7275 | 0.7304 | 0.7423 |
| Sm (ppm) | 16.2 | 22.2 | 22.2 | 22.3 | 22.1 | 2.4 | 2.5 | 2.1 |
| Nd (ppm) | 110 | 156 | 146 | 142 | 148 | 8.9 | 9 | 7.7 |
| 147Sm/144Nd | 0.0891 | 0.0861 | 0.0920 | 0.0950 | 0.0903 | 0.1631 | 0.1680 | 0.1650 |
| ±2δ | 0.003 | 0.002 | 0.003 | 0.003 | 0.003 | 0.012 | 0.012 | 0.009 |
| 143Nd/144Nd | 0.5121 | 0.5120 | 0.5121 | 0.5121 | 0.5121 | 0.5124 | 0.5124 | 0.5124 |
| ±2δ | 0.00002 | 0.00002 | 0.00001 | 0.00001 | 0.00001 | 0.00001 | 0.00002 | 0.00001 |
| εNd313 | −5.78 | −7.08 | −7.10 | −7.14 | −6.85 | −3.14 | −3.43 | −3.00 |
| TDM1 (Ma) | 1207 | 1263 | 1308 | 1334 | 1280 | 2018 | 2225 | 2057 |
| TDM2 (Ma) | 1485 | 1587 | 1589 | 1591 | 1569 | 1278 | 1301 | 1267 |
| Points | Nb (ppm) | Ta (ppm) | Cr (ppm) | Zr (ppm) | Hf (ppm) | LREE (ppm) | Th (ppm) | T (°C) [55] | T (°C) [56] | T (°C) [57] P = 6 | T (°C) [57] P = 8 | T (°C) [57] P = 10 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 1 | 6642.26 | 82.56 | 25.07 | 72.21 | 4.93 | 0.21 | 0.15 | 537 | 539 | 534 | 543 | 551 |
| 2 | 397.48 | 32.11 | 27.06 | 72.39 | 5.13 | 0.06 | 0.23 | 537 | 540 | 534 | 543 | 551 |
| 3 | 8710.66 | 105.54 | 25.59 | 71.71 | 4.99 | 0.05 | 0.09 | 536 | 539 | 534 | 542 | 551 |
| 4 | 221.49 | 14.41 | 18.63 | 67.52 | 4.75 | 0.16 | 0.15 | 528 | 535 | 530 | 538 | 547 |
| 5 | 176.65 | 12.02 | 21.45 | 60.25 | 4.57 | 286.00 | 93.22 | 514 | 528 | 523 | 532 | 540 |
| 6 | 276.14 | 21.88 | 24.83 | 62.80 | 4.37 | 34.49 | 9.83 | 519 | 531 | 526 | 534 | 543 |
| 7 | 116.26 | 5.12 | 30.03 | 62.99 | 3.77 | 0.53 | 3.03 | 519 | 531 | 526 | 534 | 543 |
| 8 | 360.34 | 30.74 | 25.37 | 62.23 | 4.41 | 0.16 | 0.10 | 518 | 530 | 525 | 533 | 542 |
| 9 | 335.12 | 28.09 | 25.75 | 66.59 | 4.82 | 1.92 | 2.59 | 527 | 534 | 529 | 538 | 546 |
| 10 | 495.76 | 39.17 | 27.37 | 65.08 | 4.77 | 5.60 | 1.63 | 524 | 533 | 528 | 536 | 545 |
| 11 | 489.30 | 36.64 | 26.97 | 69.71 | 4.96 | 0.16 | 0.05 | 532 | 537 | 532 | 540 | 549 |
| 12 | 219.23 | 13.25 | 19.69 | 59.97 | 4.11 | 2161.58 | 606.02 | 513 | 528 | 523 | 531 | 540 |
| 13 | 276.67 | 20.87 | 22.85 | 65.11 | 4.64 | 4937.09 | 2366.31 | 524 | 533 | 528 | 536 | 545 |
| 14 | 119.12 | 5.51 | 17.35 | 61.54 | 3.80 | 0.09 | 0.67 | 516 | 529 | 524 | 533 | 541 |
| 15 | 187.28 | 8.15 | 20.55 | 60.80 | 4.26 | 47.03 | 11.62 | 515 | 529 | 524 | 532 | 541 |
| 16 | 103.63 | 5.29 | 21.61 | 66.22 | 4.53 | 0.29 | 0.08 | 526 | 534 | 529 | 537 | 546 |
| 17 | 473.17 | 56.95 | 21.59 | 78.63 | 5.47 | 6346.64 | 3479.42 | 548 | 545 | 539 | 548 | 557 |
| 18 | 430.12 | 38.72 | 19.31 | 78.46 | 5.65 | 0.75 | 0.10 | 548 | 545 | 539 | 548 | 556 |
| 19 | 348.16 | 32.87 | 20.34 | 70.82 | 5.42 | 0.51 | 0.34 | 534 | 538 | 533 | 541 | 550 |
| 20 | 204.44 | 12.33 | 19.61 | 4671.22 | 19.41 | 370.96 | 279.31 | 1070 | 938 | 907 | 919 | 932 |
| 21 | 156.18 | 7.52 | 24.96 | 73.82 | 5.22 | 0.02 | 0.10 | 540 | 541 | 535 | 544 | 553 |
| 22 | 136.68 | 5.46 | 24.80 | 65.87 | 4.52 | 0.02 | 0.04 | 525 | 534 | 528 | 537 | 546 |
| 23 | 423.94 | 35.52 | 27.01 | 770.07 | 24.98 | 645.19 | 53.30 | 839 | 726 | 710 | 721 | 731 |
| 24 | 220.48 | 14.06 | 20.88 | 71.21 | 5.24 | 1.30 | 0.28 | 535 | 538 | 533 | 542 | 550 |
| 25 | 251.38 | 18.59 | 30.25 | 85.84 | 6.27 | 1.09 | 1.00 | 559 | 551 | 545 | 553 | 562 |
| Common-Lead Uncorrected | Variscan Final Ages (Ma) | ||||||||||||||||
| ID | U (ppm) | Th (ppm) | Th/U | 207Pb/235U | ±2σ | 206Pb/238U | ±2σ | Rho * | 206Pb/238U | ±2σ | 207Pb/235U | ±2σ | Concordance (%) ** | ||||
| P2-1.1 | 438.54 | 111.94 | 0.26 | 0.35658 | 0.02062 | 0.04771 | 0.00214 | 0.55922 | 300 | 13 | 310 | 16 | 97 | ||||
| P2-12.1 | 641.72 | 214.85 | 0.34 | 0.36409 | 0.00490 | 0.05031 | 0.00053 | 0.56126 | 316 | 3 | 315 | 4 | 100 | ||||
| P2-14.2 | 669.21 | 161.19 | 0.25 | 0.35142 | 0.00434 | 0.04792 | 0.00036 | 0.44080 | 302 | 2 | 306 | 3 | 99 | ||||
| P2-20.1 | 523.48 | 125.99 | 0.25 | 0.36264 | 0.00199 | 0.04970 | 0.00011 | 0.27911 | 313 | 1 | 314 | 2 | 100 | ||||
| P2-21.1 | 646.92 | 105.69 | 0.17 | 0.36709 | 0.00373 | 0.05029 | 0.00037 | 0.51975 | 316 | 2 | 318 | 3 | 100 | ||||
| P2-23.1 | 319.38 | 59.59 | 0.19 | 0.36740 | 0.00780 | 0.04996 | 0.00048 | 0.32631 | 314 | 3 | 318 | 6 | 99 | ||||
| P2-24.2 | 667.59 | 133.07 | 0.20 | 0.36622 | 0.00202 | 0.05087 | 0.00021 | 0.54078 | 320 | 1 | 317 | 2 | 101 | ||||
| P2-3.1 | 569.74 | 107.25 | 0.19 | 0.35214 | 0.00446 | 0.04879 | 0.00054 | 0.62785 | 307 | 3 | 306 | 3 | 100 | ||||
| P2-5.1 | 545.45 | 124.50 | 0.23 | 0.34628 | 0.01603 | 0.04899 | 0.00194 | 0.61610 | 308 | 12 | 302 | 12 | 102 | ||||
| P2-6.1 | 467.78 | 92.70 | 0.20 | 0.35649 | 0.01592 | 0.04848 | 0.00193 | 0.64032 | 305 | 12 | 310 | 12 | 99 | ||||
| P2-8.1 | 759.53 | 177.77 | 0.24 | 0.36748 | 0.01078 | 0.04849 | 0.00115 | 0.57984 | 305 | 7 | 318 | 8 | 96 | ||||
| P2-8.2 | 364.41 | 148.06 | 0.42 | 0.35620 | 0.01764 | 0.04691 | 0.00218 | 0.67581 | 296 | 13 | 309 | 13 | 96 | ||||
| P2-9.1 | 515.34 | 191.55 | 0.38 | 0.35892 | 0.00602 | 0.04934 | 0.00050 | 0.43734 | 311 | 3 | 311 | 5 | 100 | ||||
| Common-Lead Uncorrected | Inherited Final Ages (Ma) | ||||||||||||||||
| ID | U (ppm) | Th (ppm) | Th/U | 207Pb/206Pb | ±2σ | 207Pb/235U | ±2σ | 206Pb/238U | ±2σ | Rho * | 206Pb/238U | ±2σ | 207Pb/235U | ±2σ | 207Pb/206Pb | ±2σ | Concordance (%) ** |
| P2-10.1 | 179.10 | 164.87 | 0.94 | 0.06022 | 0.00086 | 0.83557 | 0.03238 | 0.10064 | 0.00360 | 0.66536 | 618 | 21 | 617 | 18 | 611 | 31 | 100 |
| P2-11.1 | 228.86 | 343.07 | 1.54 | 0.06147 | 0.00045 | 0.84107 | 0.01033 | 0.09923 | 0.00090 | 0.53425 | 610 | 5 | 620 | 6 | 656 | 16 | 98 |
| P2-13.1 | 338.63 | 190.71 | 0.58 | 0.06132 | 0.00044 | 0.79991 | 0.00890 | 0.09461 | 0.00073 | 0.49734 | 583 | 4 | 597 | 5 | 651 | 15 | 98 |
| P2-15.1 | 756.04 | 304.45 | 0.41 | 0.05988 | 0.00078 | 0.72902 | 0.01614 | 0.08829 | 0.00155 | 0.56965 | 545 | 9 | 556 | 10 | 599 | 28 | 98 |
| P2-17.1 | 665.98 | 269.52 | 0.42 | 0.07250 | 0.00316 | 1.39082 | 0.06675 | 0.13914 | 0.00275 | 0.29604 | 840 | 16 | 885 | 29 | 1000 | 86 | 95 |
| P2-18.1 | 187.86 | 137.25 | 0.75 | 0.06026 | 0.00093 | 0.81887 | 0.01576 | 0.09855 | 0.00107 | 0.40548 | 606 | 6 | 607 | 9 | 613 | 33 | 100 |
| P2-18.2 | 526.20 | 401.42 | 0.78 | 0.06161 | 0.00041 | 0.80328 | 0.01102 | 0.09456 | 0.00108 | 0.59907 | 582 | 6 | 599 | 6 | 661 | 14 | 97 |
| P2-2.2 | 163.45 | 112.18 | 0.70 | 0.11033 | 0.00319 | 4.44407 | 0.25007 | 0.29213 | 0.01407 | 0.61622 | 1652 | 71 | 1721 | 48 | 1805 | 52 | 96 |
| P2-22.1 | 268.95 | 98.35 | 0.38 | 0.05889 | 0.00059 | 0.77191 | 0.00987 | 0.09506 | 0.00067 | 0.39711 | 585 | 4 | 581 | 6 | 563 | 22 | 101 |
| P2-7.1 | 129.83 | 79.45 | 0.63 | 0.07135 | 0.00090 | 1.49943 | 0.04354 | 0.15243 | 0.00395 | 0.64252 | 915 | 22 | 930 | 18 | 967 | 26 | 98 |
| ID | δ18O (‰) | ±Error (95%) | 18O/16O | Error (95%) | Comment | 206Pb/238U Age (Ma) | ±2σ |
|---|---|---|---|---|---|---|---|
| P2-1.1 | 9.65 | 0.06746 | 0.00202 | 0.00000014 | - | 300 | 13 |
| P2-10.1 | 4.63 | 0.12962 | 0.00201 | 0.00000026 | fracture or inclusion | 618 | 21 |
| P2-11.1 | 9.47 | 0.07264 | 0.00202 | 0.00000015 | - | 610 | 5 |
| P2-12.1 | 8.93 | 0.08526 | 0.00202 | 0.00000017 | - | 316 | 3 |
| P2-13.2 | 10.98 | 0.09169 | 0.00203 | 0.00000019 | - | - | - |
| P2-14.1 | 4.65 | 0.06794 | 0.00201 | 0.00000014 | fracture or inclusion | - | - |
| P2-15.1 | 9.25 | 0.08628 | 0.00202 | 0.00000017 | - | 545 | 9 |
| P2-16.1 | 11.13 | 0.07682 | 0.00203 | 0.00000016 | - | 326 | 4 |
| P2-17.1 | 6.58 | 0.09385 | 0.00202 | 0.00000019 | - | 840 | 16 |
| P2-18.1 | 11.94 | 0.11393 | 0.00203 | 0.00000023 | - | 606 | 6 |
| P2-19.1 | 10.73 | 0.08436 | 0.00203 | 0.00000017 | - | 291 | 4 |
| P2-2.1 | 10.40 | 0.09662 | 0.00203 | 0.00000020 | - | - | - |
| P2-20.1 | 9.67 | 0.12326 | 0.00202 | 0.00000025 | - | 313 | 1 |
| P2-21.1 | 5.52 | 0.07376 | 0.00202 | 0.00000015 | fracture or inclusion | 316 | 2 |
| P2-22.1 | 11.23 | 0.06784 | 0.00203 | 0.00000014 | - | 585 | 4 |
| P2-23.1 | 9.83 | 0.06893 | 0.00202 | 0.00000014 | - | 314 | 3 |
| P2-24.1 | 7.48 | 0.05721 | 0.00202 | 0.00000012 | - | 321 | 6 |
| P2-25.1 | 9.39 | 0.09217 | 0.00202 | 0.00000019 | - | - | - |
| P2-26.1 | 6.34 | 0.07965 | 0.00202 | 0.00000016 | - | - | - |
| P2-27.1 | 10.98 | 0.09700 | 0.00203 | 0.00000020 | - | - | - |
| P2-28.1 | 7.12 | 0.09780 | 0.00202 | 0.00000020 | - | - | - |
| P2-29.1 | 10.55 | 0.06217 | 0.00203 | 0.00000013 | - | - | - |
| P2-3.1 | 10.46 | 0.04913 | 0.00203 | 0.00000010 | - | 307 | 3 |
| P2-30.1 | 10.51 | 0.11472 | 0.00203 | 0.00000023 | - | - | - |
| P2-31.1 | 7.85 | 0.07252 | 0.00202 | 0.00000015 | - | - | - |
| P2-32.1 | 7.01 | 0.06468 | 0.00202 | 0.00000013 | - | - | - |
| P2-33.1 | 10.13 | 0.07407 | 0.00203 | 0.00000015 | - | - | - |
| P2-34.1 | 9.54 | 0.10252 | 0.00202 | 0.00000021 | - | - | - |
| P2-35.1 | 10.13 | 0.05394 | 0.00203 | 0.00000011 | - | - | - |
| P2-36.1 | 9.72 | 0.08780 | 0.00202 | 0.00000018 | - | - | - |
| P2-37.1 | 8.77 | 0.07616 | 0.00202 | 0.00000015 | - | - | - |
| P2-38.1 | 9.57 | 0.10258 | 0.00202 | 0.00000021 | - | - | - |
| P2-39.1 | 9.32 | 0.06220 | 0.00202 | 0.00000013 | - | - | - |
| P2-4.1 | 10.34 | 0.07804 | 0.00203 | 0.00000016 | - | - | - |
| P2-40.1 | 3.80 | 0.15000 | 0.00201 | 0.00000030 | fracture or inclusion | - | - |
| P2-41.1 | 5.29 | 0.05377 | 0.00202 | 0.00000011 | fracture or inclusion | - | - |
| P2-41.2 | 4.60 | 0.08730 | 0.00201 | 0.00000018 | fracture or inclusion | - | - |
| P2-42.1 | 9.47 | 0.06931 | 0.00202 | 0.00000014 | - | - | - |
| P2-43.1 | 9.39 | 0.10278 | 0.00202 | 0.00000021 | - | - | - |
| P2-44.1 | 8.94 | 0.07377 | 0.00202 | 0.00000015 | - | - | - |
| P2-45.1 | 2.70 | 0.21000 | 0.00201 | 0.00000042 | fracture or inclusion | - | - |
| P2-5.1 | 10.05 | 0.06455 | 0.00203 | 0.00000013 | - | 308 | 12 |
| P2-6.1 | 10.65 | 0.07805 | 0.00203 | 0.00000016 | - | 305 | 12 |
| P2-7.1 | 4.90 | 0.08337 | 0.00202 | 0.00000017 | fracture or inclusion | 915 | 22 |
| P2-8.2 | 9.54 | 0.08794 | 0.00202 | 0.00000018 | - | 296 | 13 |
| P2-9.1 | 10.96 | 0.08797 | 0.00203 | 0.00000018 | - | 311 | 3 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Ferreira, J.A.; Martins, H.C.B.; Ribeiro, M.d.A.; Santos, J.F.d. Isotopic Disequilibrium Between Migmatites and Protolith: Insights from a Variscan Anatectic Complex (NW of Iberian Variscan Belt, Portugal). Geosciences 2026, 16, 152. https://doi.org/10.3390/geosciences16040152
Ferreira JA, Martins HCB, Ribeiro MdA, Santos JFd. Isotopic Disequilibrium Between Migmatites and Protolith: Insights from a Variscan Anatectic Complex (NW of Iberian Variscan Belt, Portugal). Geosciences. 2026; 16(4):152. https://doi.org/10.3390/geosciences16040152
Chicago/Turabian StyleFerreira, Joana Alexandra, Helena C. B. Martins, Maria dos Anjos Ribeiro, and José Francisco dos Santos. 2026. "Isotopic Disequilibrium Between Migmatites and Protolith: Insights from a Variscan Anatectic Complex (NW of Iberian Variscan Belt, Portugal)" Geosciences 16, no. 4: 152. https://doi.org/10.3390/geosciences16040152
APA StyleFerreira, J. A., Martins, H. C. B., Ribeiro, M. d. A., & Santos, J. F. d. (2026). Isotopic Disequilibrium Between Migmatites and Protolith: Insights from a Variscan Anatectic Complex (NW of Iberian Variscan Belt, Portugal). Geosciences, 16(4), 152. https://doi.org/10.3390/geosciences16040152

