Open Access
Numéro
BSGF - Earth Sci. Bull.
Volume 196, 2025
Numéro d'article 15
Nombre de pages 26
DOI https://doi.org/10.1051/bsgf/2025008
Publié en ligne 4 septembre 2025
  • Almela A, Alvarado M, Coma E, et al. 1962. Estudio geológico de la región de Almadén. Boletín Geológico y Min España 73: 193–327 [Google Scholar]
  • Arenas R, Martínez Catalán JR, Sánchez Martínez S, et al. 2007. The Vila de Cruces ophiolite: a remnant of the early Rheic Ocean in the Variscan suture of Galicia (northwest Iberian Massif). J Geol 115: 129–148. [Google Scholar]
  • Arenas R, Sánchez Martínez S, Díez Fernández R, et al. 2016. Allochthonous terranes involved in the Variscan suture of NW Iberia: a review of their origin and tectonothermal evolution. Earth-Science Rev 161: 140–178. [Google Scholar]
  • Arribas, Gumiel P. 1984. First Ocurrece of a Strata-Bound Sb-W-Hg Deposit in the Spanish Hercynian Massif. In: Wauschkuhn A, Kluth C, Zimmerman RH (eds) Syngenesis and epigenesis in the formation of mineral deposits. Spriger-Verlag, Berlin-Heidelberg pp 469–481 [Google Scholar]
  • Azor A, Dias da Silva Í, Gómez Barreiro J, et al. 2019. Deformation and Structure. Springer International Publishing. [Google Scholar]
  • Bandrés A, Eguíluz L, Pin C, et al. 2004. The northern Ossa-Morena Cadomian batholith (Iberian Massif): Magmatic arc origin and early evolution. Int J Earth Sci 93: 860–885. [Google Scholar]
  • Barbero L, Villaseca C. 2000. Eclogite facies relics in metabasites from the Sierra de Guadarrama (Spanish Central System): P-T estimations and implications for the Hercynian evolution. Mineral Mag 64: 815–836. [Google Scholar]
  • Barboni M, Schoene B, Ovtcharova M, et al. 2013. Timing of incremental pluton construction and magmatic activity in a back-arc setting revealed by ID-TIMS U/Pb and Hf isotopes on complex zircon grains. Chem Geol 342: 76–93. [Google Scholar]
  • Barquero JI, Lorenzo S, Esbri JM, et al. 2022. Geochemical Assessment of Mineral Resource Potential in a Hg-Sb-Pb-Zn Mining Area: The Almadén and Guadalmez Synclines (South-Central Spain). 1–17 [Google Scholar]
  • Bea F, Montero P, Molina JF. 1999. Mafic precursors, peraluminous granitoids, and late lamprophyres in the Avila batholith: a model for the generation of variscan batholiths in Iberia. J Geol 107: 399–419. [Google Scholar]
  • Bea F, Montero PG, Gonzalez-Lodeiro F, et al. 2006. Zircon thermometry and U-Pb ion-microprobe dating of the gabbros and associated migmatites of the Variscan Toledo Anatectic Complex, Central Iberia. J Geol Soc London 163: 847–855. [Google Scholar]
  • Boudreau AE. 1995. Fluid evolution in layered intrusions: evidence from the chemistry of the halogen-bearing minerals. In: Thompson JFH (ed) Magmas, Fluids and Ore Deposits., 23rd edn. Geological Society of Canada Short Course., pp 25–46 [Google Scholar]
  • Cambeses A, Scarrow JH, Montero P, et al. 2015. SHRIM U–Pb zircon dating of the Valencia del Ventoso plutonic complex, Ossa-Morena Zone, SW Iberia: Early Carboniferous intra-orogenic extension-related “calc-alkaline” magmatism. Gondwana Res 28: 735–756. [Google Scholar]
  • Carbonell R, Simancas F, Juhlin C, et al. 2004. Geophysical evidence of a mantle derived intrusion in SW Iberia. Geophys Res Lett 31: 2–5. [Google Scholar]
  • Carnicero A, Castro A. 1983. El plutón de Higuera-Táliga y su haz de diques básicos (Badajoz, Sierra Morena occidental). Estud Geológicos 39: 141–150. [Google Scholar]
  • Chauvel C, Lewin E, Carpentier M, et al. 2008. Role of recycled oceanic basalt and sediment in generating the Hf-Nd mantle array. Nat Geosci 1: 64–67. [Google Scholar]
  • Cherniak DJ, Lanford WA, Ryerson FJ. 1991. Lead diffusion in apatite and zircon using ion implantation and Rutherford Backscattering techniques. Geochim Cosmochim Acta 55: 1663–1673. [CrossRef] [Google Scholar]
  • Chew DM, Petrus JA, Kamber BS. 2014. U-Pb LA-ICPMS dating using accessory mineral standards with variable common Pb. Chem Geol 363: 185–199. [CrossRef] [Google Scholar]
  • Cochrane R, Spikings RA, Chew D, et al. 2014. High temperature (>350°C) thermochronology and mechanisms of Pb loss in apatite. Geochim Cosmochim Acta 127: 39–56. [CrossRef] [Google Scholar]
  • Cotrim B, Bento dos Santos T, Mata J, et al. 2021. Lower Paleozoic rifting event in Central Iberian Zone (central-north Portugal): evidence from elemental and isotopic geochemistry of metabasic rocks. Geochemistry 81: 125768. [Google Scholar]
  • Dallmeyer RD, Martínez Catalán JR, Arenas R, et al. 1997. Diachronous Variscan tectonothermal activity in the NW Iberian Massif: evidence from 40Ar/39Ar dating of regional fabrics. Tectonophysics 277: 307–337. [CrossRef] [Google Scholar]
  • de Almeida Coelho CM. 2021. O Campo Lamprofírico de Labruge: Petrologia e Geoquímica. Universidade do Porto [Google Scholar]
  • De Vicente G, Cloetingh S, Van Wees JD, Cunha PP. 2011. Tectonic classification of Cenozoic Iberian foreland basins. Tectonophysics 502: 38–61. [CrossRef] [Google Scholar]
  • De Vicente G, Olaiz A, Muñoz-Martín A, Cunha PP. 2021. Longest and still longer: the Messejana-Plasencia dyke and its links with later Alpine deformation belt in Iberia. Tectonophysics 815: [Google Scholar]
  • Dee SJ, Roberts S. 1993. Late-kinematic gold mineralisation during regional uplift and the role of nitrogen: an example from the La Codosera area, W. Spain. Mineral Mag 57: 437–450. [Google Scholar]
  • . Díez Fernández R, Arenas R. 2015. The Late Devonian Variscan suture of the Iberian Massif: A correlation of high-pressure belts in NW and SW Iberia. Tectonophysics 654: 96–100. [Google Scholar]
  • Dodson MH. 1973. Closure temperature in cooling geochronological and petrological systems. Contrib Mineral Petrol 40: 259–274. [Google Scholar]
  • Dostal J, Murphy JB, Shellnutt JG, et al. 2019. Neoproterozoic to Cenozoic magmatism in the central part of the Bohemian Massif (Czech Republic): Isotopic tracking of the evolution of the mantle through the Variscan orogeny. Lithos 326-327: 358–369. [Google Scholar]
  • Dunn AM, Reynolds PH, Clarke DB, Ugidos JM. 1998. A comparison of the age and composition of the Shelburne dyke, Nova Scotia, and the Messejana dyke, Spain. Can J Earth Sci 35: 1110–1115. [Google Scholar]
  • Errandonea-Martin J, Sarrionandia F, Janoušek V, et al. 2019. Origin of cordierite-bearing monzogranites from the southern Central Iberian Zone − Inferences from the zoned Sierra Bermeja Pluton (Extremadura, Spain). Lithos 342-343: 440–462. [Google Scholar]
  • García-Arias M, Díez-Montes A, Villaseca C, Blanco-Quintero IF. 2018. The Cambro-Ordovician Ollo de Sapo magmatism in the Iberian Massif and its Variscan evolution: a review. Earth-Science Rev 176: 345–372. [Google Scholar]
  • Garcia de Figuerola LC, Corretge LG, Bea F. 1974. El dique de Alentejo-Plasencia y haces de diques básicos de Extremadura. Boletín Geológico y Min España 85: 40–69 [Google Scholar]
  • García San Segundo J, Lorenzo Álvarez S, Martinez Rius A, et al. 1985. Mapa geológico & memoria explicativa de la hoja num. 808, Almadén. In: Mapa Geológico de España, escala 1:50.000, 2a serie, plan MAGNA. IGME, Madrid, p 62 [Google Scholar]
  • Goldoff B, Webster JD, Harlov DE. 2012. Characterization of fluor-chlorapatites by electron probe microanalysis with a focus on time-dependent intensity variation of halogens. Am Mineral 97: 1103–1115. [Google Scholar]
  • Gonçalves F, Perdigao JC. 1978. Carta Geológica de Portugal. E. 1: 50.000. Notícia Explicativa da Folha 33–A (Assumar). Servo Geol. Portugal. [Google Scholar]
  • Grant JA. 1986. The isocon diagram; a simple solution to Gresens’ equation for metasomatic alteration. Econ Geol 81: 1976–1982. [CrossRef] [Google Scholar]
  • Grant JA. 2005. Isocon analysis: A brief review of the method and applications. Phys Chem Earth 30: 997–1004. [Google Scholar]
  • Griffin WL, O’Reilly S, Ryan C. 1999. The composition and origin of sub-continental lithospheric mantle. Mantle Petrol F Obs High Press Exp A Tribut to Fr R Boyd 13–45. [Google Scholar]
  • Gumiel P. 1982. METALOGENIA DE LOS YACIMIENTOS DE ANTIMONIO DE LA PENINSULA IBERICA. Universidad de Salamanca [Google Scholar]
  • Gumiel P, Arribas A. 1987. Antimony deposits in the Iberian Peninsula. Econ Geol 82: 1453–1463. [Google Scholar]
  • Gumiel P, Arribas A, Saavedra-Alonso J. 1976. Geología y metalogénia del yacimiento de estibina-scheelita de “San Antonio” Alburquerque (Badajoz). STVDIA Geol X: 61–93. [Google Scholar]
  • Gutiérrez-Alonso G, Murphy JB, Fernández-suárez J, Hamilton M. 2008. Rifting along the northern Gondwana margin and the evolution of the Rheic Ocean: a Devonian age for the El Castillo volcanic rocks (Salamanca, Central Iberian Zone). Tectonophysics 461: 157–165. [Google Scholar]
  • Gutiérrez-Marco JC, Piçarra JM, Meireles CA, et al. 2019. Early Ordovician-Devonian Passive Margin Stage in the Gondwanan Units of the Iberian Massif. 75–98. https://doi.org/10.1007/978-3-030-10519-8_3 [Google Scholar]
  • Hall CM, Higueras PL, Kesler SE, et al. 1997. Dating of alteration episodes related to mercury mineralization in the Almadén district, Spain. Earth Planet Sci Lett 148: 287–298. [Google Scholar]
  • Harrison WJ. 1981. Partitioning REE between minerals and coexisting melts during partial melting of a garnet lherzolite. Am Mineral 66: 242–259. [Google Scholar]
  • Hernández A, Jébrak M, Higueras P, et al. 1999. The Almaden mercury mining district, Spain. Miner Depos 34: 539–548. [Google Scholar]
  • Hiess J, Condon DJ, McLean N, Noble SR. 2012. 238U/235U systematics in terrestrial uranium-bearing minerals. Science (80-) 335: 1610–1614. [Google Scholar]
  • Higueras P. 1995. Procesos petrogenéticos y de alteración de las rocas magmáticas asociadas a las mineralizaciones de mercurio del distrito de Almadén. Universidad de Castilla-La Mancha [Google Scholar]
  • Higueras P. 2000. The Almadén mercury metallogenic cluster (Ciudad Real, Spain): alkaline magmatism leading to mineralization processes at an intraplate tectonic setting: alkaline magmatism leading to mineralization processes at an intraplate tectonic setting. Rev la Soc Geológica España 13: 105–119. [Google Scholar]
  • Higueras P, Morata D, Munha J. 1995. Metamorfismo de bajo grado en facies prehnita-pumpellyita en las metabasitas del Sinclinal de Almadén. Boletín la Soc Española Mineral 18: 111–125. [Google Scholar]
  • Higueras P, Oyarzun R. 2005. First lead isotopic data for cinnabar in the Almadén district (Spain): implications for the genesis of the mercury deposits. Geogaceta 37: 67–70. [Google Scholar]
  • Higueras P, Oyarzun R, Lillo J, Morata D. 2013. Intraplate mafic magmatism, degasification, and deposition of mercury: the giant Almadén mercury deposit (Spain) revisited. Ore Geol Rev 51: 93–102. [Google Scholar]
  • Higueras P, Oyarzun R, Munha J, Morata D. 2000. The Almaden mercury metallogenic cluster (Ciudad Real, Spain): alkaline magmatism leading to mineralization process ar an intraplate tectonic setting. Rev la Soc Geológica España 13: 105–119. [Google Scholar]
  • Hughes JM, Rakovan JF. 2015. Structurally robust, chemically diverse: Apatite and apatite supergroup minerals. Elements 11: 165–170. [Google Scholar]
  • Insua Marquez M, Santos García JA, Opatalegui Isasa O, et al. 1990. Mapa geológico & memoria explicativa de la hoja num. 750, Botoa. Instituto Geológico y Minero de España. [Google Scholar]
  • Julivert M, Fontboté JM, Ribeiro A, Conde L. 1974. Mapa Tectónico de la Península Ibérica y Baleares. Instituto Geológico y Minero de España, Madrid [Google Scholar]
  • Kamenetsky VS, Eggins SM. 2012. Systematics of metals, metalloids, and volatiles in MORB melts: Effects of partial melting, crystal fractionation and degassing (a case study of Macquarie Island glasses). Chem Geol 302-303: 76–86. [Google Scholar]
  • Kieffer MA, Dare SAS, Namur O, Mansur ET. 2024. Apatite Chemistry as a Petrogenetic Indicator for Mafic Layered Intrusions. J Petrol 65. https://doi.org/10.1093/petrology/egae022 [Google Scholar]
  • Large RR. 2001. The Alteration Box Plot: A Simple Approach to Understanding the Relationship between Alteration Mineralogy and Lithogeochemistry Associated with Volcanic-Hosted Massive Sulfide Deposits. Econ Geol 96: 957–971. [Google Scholar]
  • Le Bas MJ, Maitre RWL, Streckeisen A, Zanettin B. 1986. A chemical classification of volcanic rocks based on the total alkali-silica diagram. J Petrol 27: 745–750. [CrossRef] [Google Scholar]
  • López-Moro FJ, Murciego A, López-Plaza M. 2007. Silurian/Ordovician asymmetrical sill-like bodies from La Codosera syncline, W Spain: a case of tholeiitic partial melts emplaced in a single magma pulse and derived from a metasomatized mantle source. Lithos 96: 567–590. [Google Scholar]
  • López-Moro FJ, Murciego A, López-Plaza M, et al. 2020. Sequential crystal overproduction triggering Mg-Cr-Ti-V-P-MREE- enrichment in a single-pulse tholeiitic mafic sill in the Central Iberian Zone, Spain. Lithos 362–363. https://doi.org/10.1016/j.lithos.2020.105464 [Google Scholar]
  • López-Moro FJ, Murciego A, Rodríguez-González MA, et al. 2005. Estudio de la potencialidad como roca ornamental de los sills de diabasa en Alburquerque-Villar del Rey-La Roca de la Sierra-Puebla de Obando, NO de Babajoz. Bol Geol y Min 116: 53–64. [Google Scholar]
  • López-Moro FJ, Romer RL, López-Plaza M, Gónzalez Sánchez M. 2017. Zircon and allanite U-Pb ID-TIMS ages of vaugnerites from the Calzadilla Pluton, Salamanca (Spain): Dating mantle-derived magmatism and post-magmatic subsolidus overprint. Geol Acta 15: 395–408. [Google Scholar]
  • López Díaz F, Monteserín López V, Pineda Velasco A, et al. 1989. Mapa geológico & memoria explicativa de la hoja num. 728, Puebla de Obando. In: Mapa Geológico de España, escala 1:50.000, 2a serie, plan MAGNA. IGME, Madrid, p 63 [Google Scholar]
  • Lorenzo Álvarez S, Martín Herrero D, Valverde Hernández MF, Monteserín López V. 1995. Mapa geológico & memoria explicativa de la hoja num. 807, Chillón. In: Mapa Geológico de España, escala 1:50.000, 2a serie, plan MAGNA. IGME, Madrid, p 116 [Google Scholar]
  • Lotze F. 1945. Zur Gliederung der Varisziden der Iberischen Meseta. Geotekt 6: 78–92. [Google Scholar]
  • Martínez-Catalán JR, González Clavijo E, Meireles C, et al. 2016. Relationships between syn-orogenic sedimentation and nappe emplacement in the hinterland of the Variscan belt in NW Iberia deduced from detrital zircons. Geol Mag 153: 38–60. [Google Scholar]
  • Martínez Catalán JR, Arenas R, Abati J, et al. 2009. A rootless suture and the loss of the roots of a mountain chain: the Variscan belt of NW Iberia. Comptes Rendus − Geosci 341: 114–126. [Google Scholar]
  • Martínez Catalan JR, Arenas R, Díagarcía F, et al. 2007. Space and time in the tectonic evolution of the northwestern Iberian Massif: implications for the Variscan belt. Mem Geol Soc Am 200: 403–423. [Google Scholar]
  • Martínez Catalán JR, Rubio Pascual FJ, Díez Montes A, et al. 2014. The late variscan HT/LP metamorphic event in NW and Central Iberia: relationships to crustal thickening, extension, orocline development and crustal evolution. Geol Soc Spec Publ 405: 225–247. [Google Scholar]
  • Martínez Catalán JR, Schulmann K, Ghienne JF. 2021. The Mid-Variscan Allochthon: keys from correlation, partial retrodeformation and plate-tectonic reconstruction to unlock the geometry of a non-cylindrical belt. Earth-Science Rev 220. https://doi.org/10.1016/j.earscirev.2021.103700 [Google Scholar]
  • Matte P. 2001. The Variscan collage and orogeny (480–290 Ma) and the tectonic definition of the Armorica microplate: a review. Terra Nov 13: 122–128. [Google Scholar]
  • McDowell FW, McIntosh WC, Farley KA. 2005. A precise 40Ar-39Ar reference age for the Durango apatite (U-Th)/He and fission-track dating standard. Chem Geol 214: 249–263. [CrossRef] [Google Scholar]
  • Medeiros A, Pereira MF, Moreira A. 1981. Carta Geológica de Portugal Folha 9-D (PENAFIEL). LNEG, Lisbon. [Google Scholar]
  • Mira López M, Ortega Gironés E, Rodríguez Pevida L, et al. 1983a. Mapa geológico & memoria explicativa de la hoja num. 833, Hinojosa del Duque. In: Mapa Geológico de España, escala 1:50.000, 2a serie, plan MAGNA. IGME, Madrid, p 58 [Google Scholar]
  • Mira López M, Ortega Gironés E, Rodríguez Pevida L. 1983b. Mapa geológico & memoria explicativa de la hoja num. 834, San Benito. In: Mapa Geológico de España, escala 1:50.000, 2a serie, plan MAGNA. IGME, Madrid, p 53 [Google Scholar]
  • Montero P, Bea F, Zinger T, et al. 2004a. 55 million years of continuous anatexis in Central Iberia: Single-zircon dating of the Peña Negra Complex. J Geol Soc London 161: 255–263. [Google Scholar]
  • Montero P, Zinger T, Bea F. 2004b. Edad “207” Pb/206 Pb en cristal único de circón de las rocas máficas y ultramáficas del sector de Gredos, Batolito de Ávila (Sistema Central Español). Rev la Soc Geológica España 17: 157–167. [Google Scholar]
  • Murphy PJ, Roberts S. 1997. Evolution of a metamorphic fluid and its role in lode gold mineralisation in the Central Iberian Zone. Miner Depos 32: 459–474. [Google Scholar]
  • Nance RD, Gutiérrez-Alonso G, Keppie JD, et al. 2012. A brief history of the Rheic Ocean. Geosci Front 3: 125–135. [Google Scholar]
  • Orejana D, Villaseca C, Kristoffersen M. 2020. Geochemistry and geochronology of mafic rocks from the Spanish Central System: constraints on the mantle evolution beneath central Spain. Geosci Front 11: 1651–1667. [Google Scholar]
  • Orejana D, Villaseca C, Merino Martínez E. 2017. Basic Ordovician magmatism of the Spanish Central System: Constraints on the source and geodynamic setting. Lithos 284-285: 608–624. [Google Scholar]
  • Orejana D, Villaseca C, Pérez-Soba C, et al. 2009. The Variscan gabbros from the Spanish Central System: a case for crustal recycling in the sub-continental lithospheric mantle? Lithos 110: 262–276. [CrossRef] [Google Scholar]
  • Palero-Fernández FJ, Martin-Izard A, Prieto MZ, Mansilla-Plaza L. 2015. Geological context and plumbotectonic evolution of the giant Almadén mercury deposit. Ore Geol Rev 64: 71–88. [Google Scholar]
  • Palero F, Lorenzo S. 2009. Mercury mineralization in the region of Almadén. In: García-Cortés A, Agueda-Villar J, Palacio Suarez-Valgrande J, Salvador González CI (eds) Spanish Geological Frameworks and Geosites: An Approach to Spanish Geological Heritage of International Relevance. Instituto Geológico y Minero de España, Madrid pp 65–72 [Google Scholar]
  • Palomeras I, Carbonell R, Ayarza P, et al. 2011. Geophysical model of the lithosphere across the Variscan Belt of SW-Iberia: multidisciplinary assessment. Tectonophysics 508: 42–51. [Google Scholar]
  • Palomeras I, Villaseñor A, Thurner S, et al. 2017. Lithospheric structure of Iberia and Morocco using finite-frequency Rayleigh wave tomography from earthquakes and seismic ambient noise. Geochem Geophys Geosyst 18: 1824–1840. [CrossRef] [Google Scholar]
  • Paquette JL, Ballèvre M, Peucat JJ, Cornen G. 2017. From opening to subduction of an oceanic domain constrained by LA-ICP-MS U-Pb zircon dating (Variscan belt, Southern Armorican Massif, France). Lithos 294-295: 418–437. [CrossRef] [Google Scholar]
  • Pardo MV, García-Alcarde JL. 1984. Bioestratigrafía del Devónico de la región de Almadén (Ciudad Real, España). Trab Geol 14. [Google Scholar]
  • Paton C, Woodhead JD, Hellstrom JC, et al. 2010. Improved laser ablation U-Pb zircon geochronology through robust downhole fractionation correction. Geochem Geophys Geosyst 11. https://doi.org/10.1029/2009GC002618 [Google Scholar]
  • Pearce JA. 1996. A user’s guide to basalt discrimination diagrams. Geol. Assoc. Canada, Short Course Notes 12: 79–113. [Google Scholar]
  • Pearce JA. 2008. Geochemical fingerprinting of oceanic basalts with applications to ophiolite classification and the search for Archean oceanic crust. Lithos 100: 14–48. [CrossRef] [Google Scholar]
  • Pearce JA. 1983. Role of the sub-continental lithosphere in magma genesis at active continental margins. Cont Basalts Mantle Xenoliths 250: 230–249. [Google Scholar]
  • Piccoli PM, Candela PA. 2002 Apatite in Igneous Systems. Rev Mineral Geochem 48: 255–292. [Google Scholar]
  • Pin C, Fonseca PE, Paquette JL, et al. 2008. The ca. 350 Ma Beja Igneous Complex: A record of transcurrent slab break-off in the Southern Iberia Variscan Belt? Tectonophysics 461: 356–377. [Google Scholar]
  • Pochon A. 2018. Magmatisme mafique et minéralisations Sb-Au dans le domaine Centre Armoricain: contrôles spatio-temporels et implications metallogéniques. Université de rennes 1. [Google Scholar]
  • Pochon A, Branquet Y, Gloaguen E, et al. 2019. A Sb ± Au mineralizing peak at 360 Ma in the Variscan belt. BSGF − Earth Sci Bull 190. https://doi.org/10.1051/bsgf/2019004 [Google Scholar]
  • Pochon A, Gloaguen E, Branquet Y, et al. 2018. Variscan Sb-Au mineralization in Central Brittany (France): a new metallogenic model derived from the Le Semnon district. Ore Geol Rev 97: 109–142. [Google Scholar]
  • Pochon A, Poujol M, Gloaguen E, et al. 2016b. U-Pb LA-ICP-MS dating of apatite in mafic rocks: Evidence for a major magmatic event at the Devonian-Carboniferous boundary in the Armorican Massif (France). Am Mineral 101: 2430–2442. [Google Scholar]
  • Roberts S, Sanderson DJ, Dee S, Gumiel P. 1991. Tectonic setting and fluid evolution of auriferous quartz veins from the La Codosera Area, western Spain. Econ Geol 86: 1012–1022. [Google Scholar]
  • Rodríguez González R, Medina Varea P, González Lodeiro F, et al. 2007. Microflora y conodontos del Mississippiense en la Fm Gévora (núcleo del Sinforme LaCodosera-Puebla de Obando, SO de la Zona Centroibérica). Rev la Soc Geológica España 20: 71–88. [Google Scholar]
  • Ross PS, Bédard JH. 2009. Magmatic affinity of modern and ancient subalkaline volcanic rocks determined from trace-element discriminant diagrams Magmatic affinity of modern and ancient subalkaline volcanic rocks determined from trace element discriminant diagrams. Can J Earth Sci 46: 823–839. [Google Scholar]
  • San José MA, Piere AP, García Hidalgo JF, et al. 1990. Central-Iberian zone. Ante-Ordovician stratigraphy. In: Dallmeyer RD, Martínez-García E (eds) Pre-Mesozoic Geology of Iberia. Spriger-Verlag, Berlin pp 147–159. [Google Scholar]
  • Sanderson DJ, Roberts S, McGowan JA, Gumiel P. 1991. Hercynian transpressional tectonics at the southern margin of the Central Iberian Zone, west Spain. J Geol Soc London 148: 893–898. [Google Scholar]
  • Santos García JA, Apatalegue Isasa O, Carvajal Menéndez A, et al. 1990. Mapa geológico & memoria explicativa de la hoja num. 751, Villar del Rey. In: Mapa Geológico de España, escala 1:50.000, 2a serie, plan MAGNA. IGME, Madrid, p 63. [Google Scholar]
  • Santos Garcia JA, Casas Ruiz J. 1979. Geologia del sinclinorio de Sao Mamede-La Codosera, zona espanola (provincias de Caceres y Badajoz). Bol Geol y Min 90: 420–431. [Google Scholar]
  • Santos Garcia JA, Casas Ruiz J. 1982. Mapa geológico & memoria explicativa de la hoja num. 727, Alburquerque. In: Mapa Geológico de España, escala 1:50.000, 2a serie, plan MAGNA. IGME, Madrid, p 33. [Google Scholar]
  • Santos García JA, Casas Ruiz J. 1982. Mapa geológico & memoria explicativa de la hoja num. 727, Alburquerque. In: Mapa Geológico de España E. 1: 50.000. Instituto Geológico y Minero de España, Madrid, p 35. [Google Scholar]
  • Sarrionandia F, Errandonea-Martin J, Larrondo E, et al. 2023. Low-Ti Continental Tholeiite Origin of Magmas With Calc-Alkaline Signature in Transcurrent Settings: The Mississippian Matachel Volcanic Field (SW Iberian Massif). Geochemistry, Geophys Geosyst 24: 1–39. [Google Scholar]
  • Saupe F. 1973. Le geologie du gisement de mercure d’Almaden (Ciudad Real, Espagne). BRGM Sci Terre 29: 342. [Google Scholar]
  • Saupé F. 1990. Geology of the Almaden mercury deposit, province of Ciudad Real, Spain. Econ Geol 85: 482–510. [Google Scholar]
  • Saupé F, Arnold M. 1992. Sulphur isotope geochemistry of the ores and country rocks at the Almadén mercury deposit, Ciudad Real, Spain. Geochim Cosmochim Acta 56: 3765–3780. [Google Scholar]
  • Scarrow JH, Molina JF, Bea F, Montero P. 2009. Within-plate calc-alkaline rocks: Insights from alkaline mafic magma-peraluminous crustal melt hybrid appinites of the Central Iberian Variscan continental collision. Lithos 110: 50–64. [Google Scholar]
  • Schoene B, Bowring SA. 2007. Determining accurate temperature-time paths from U-Pb thermochronology: an example from the Kaapvaal craton, southern Africa. Geochim Cosmochim Acta 71: 165–185. [Google Scholar]
  • Schoene B, Bowring SA. 2006. U-Pb systematics of the McClure Mountain syenite: thermochronological constraints on the age of the 40Ar/39Ar standard MMhb. Contrib to Mineral Petrol 151: 615–630. [Google Scholar]
  • Schulmann K, Edel JB, Martínez Catalán F JR, et al. 2022. Tectonic evolution and global crustal architecture of the European Variscan belt constrained by geophysical data. Earth-Science Rev 234. https://doi.org/10.1016/j.earscirev.2022.104195 [Google Scholar]
  • Simancas JF. 2019. The Variscan Cycle. Springer International Publishing. [Google Scholar]
  • Simancas JF, Carbonell R, González Lodeiro F, et al. 2003. Crustal structure of the transpressional Variscan orogen of SW Iberia: SW Iberia deep seismic reflection profile (IBERSEIS). Tectonics 22. https://doi.org/10.1029/2002TC001479 [Google Scholar]
  • Simancas JF, Carbonell R, González Lodeiro F, et al. 2006. Transpressional collision tectonics and mantle plume dynamics: The Variscides of southwestern Iberia. Geol Soc Mem 32: 345–354. [Google Scholar]
  • Solá AR, Neiva AMR, Ribeiro ML. 2010. Geocronologia, petrologia e geoquímica dos granitóides do ne alentejano (transição zci/zom): significado geodinâmico. Ciências Geológicas − Ensino e Investig e sua História I: 281–290. [Google Scholar]
  • Solá AR, Neiva AMR, Ribeiro ML, Moreira ME. 2003. Geochemistry of igneous rocks from Carrascal Massif (Central Portugal) − a preliminary approach. J Czech Geol Soc 48: 115–116. [Google Scholar]
  • Soldevila Bartolí J. 1992. La sucesión paleozoica en el sinforme de la Codosera-Puebla de Obando (provincias de Cáceres y Badajoz, SO de España). Estud Geológicos 48: 353–362. [Google Scholar]
  • Song XY, Keays RR, Xiao L, et al. 2009. Platinum-group element geochemistry of the continental flood basalts in the central Emeisihan Large Igneous Province, SW China. Chem Geol 262: 246–261. [Google Scholar]
  • Stormer JC, Pierson ML, Tacker RC. 1993. Variation of F and Cl X-ray intensity due to anisotropic diffusion in apatite during electron microprobe analysis. Am Mineral 78: 641–648. [Google Scholar]
  • Sun S-S., McDonough WF. 1989. Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes. Geol Soc Spec Publ 42: 313–345. [Google Scholar]
  • Tappe S, Graham Pearson D, Kjarsgaard BA, et al. 2013. Mantle transition zone input to kimberlite magmatism near a subduction zone: origin of anomalous Nd-Hf isotope systematics at Lac de Gras, Canada. Earth Planet Sci Lett 371-372: 235–251. [Google Scholar]
  • Thomson SN, Gehrels GE, Ruiz J, Buchwaldt R. 2012. Routine low-damage apatite U-Pb dating using laser ablation-multicollector- ICPMS. Geochem Geophys Geosyst 13: 1–23. [Google Scholar]
  • Vermeesch P. 2018. IsoplotR: A free and open tool box for geochronology. Geosci Front 9: 1479–1493. [CrossRef] [Google Scholar]
  • Villas E, Lorenzo S, Gutiérrez-Marco JC. 1999. First record of a Hirnantia Fauna from Spain, and its contribution to the Late Ordovician palaeogeography of northern Gondwana. Trans R Soc Edinburgh, Earth Sci 89: 187–197. [Google Scholar]
  • Villaseca C, Castiñeiras P, Orejana D. 2015. Early Ordovician metabasites from the Spanish Central System: A remnant of intraplate HP rocks in the Central Iberian Zone. Gondwana Res 27: 392–409. [Google Scholar]
  • Villaseca C, Martín Romera C, Barbero L. 2002. Estimaciones termobarométricas en los metagabros coroníticos de la región de Segovia (Sierra de Guadarrama). Geogaceta 32: 11–14. [Google Scholar]
  • Villaseca C, Orejana D, Higueras P et al., 2022. The evolution of the subcontinental mantle beneath the Central Iberian Zone: geochemical tracking of its mafic magmatism from the Neoproterozoic to the Cenozoic. Earth-Science Rev 228: 103997. [Google Scholar]
  • Webster JD, Piccoli PM. 2015. Magmatic apatite: a powerful, yet deceptive, mineral. Elements 11: 177–182. [Google Scholar]
  • Williams NC, Davinson GJ. 2004. Possible submarine advanced argillic alteration at the basin lake prospect, Western Tasmania, Australia. Econ Geol 99: 987–1002. [Google Scholar]
  • Zhao Z, Mo X, Dilek Y et al., 2009. Geochemical and Sr-Nd-Pb-O isotopic compositions of the post-collisional ultrapotassic magmatism in SW Tibet: Petrogenesis and implications for India intra-continental subduction beneath southern Tibet. Lithos 113: 190–212. [Google Scholar]

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