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Volume 35, Issue 6
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2023-11-12
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References

  1. Argnani, A., & Trincardi, F. (1993). Growth of a slope ridge and its control on sedimentation: Paola slope basin (eastern Tyrrhenian margin). In L. E.Frostick & R. J.Steel. (Eds.), Tectonics controls and signatures in sedimentary succession, (Vol. 20, pp. 467–480). The International Association of Sedimentologists.
    [Google Scholar]
  2. Bigi, G., Cosentino, D., Parotto, M., Sartori, R., & Scandone, P. (1992). Structural model of Italy 1: 500,000. CNR progetto finalizzato geodinamica. Vol. 114(3).
  3. Bjerkvik, A. S. (2012). Seimic analysis of carboniferous rift basin and Triassic growth‐fault basins of Svalbard; analysis of seismic facies patterns with bearing on basin geometry and growth‐strata successions (doctoral dissertation), Norwegian University of Science and Technology. Earth Sciences and Petroleum Engineering.
  4. Bortoluzzi, G., Ligi, M., Romagnoli, C., Cocchi, L., Casalbore, D., Sgroi, T., Cuffaro, M., Tontini, F. C., D'Oriano, F., Ferrante, V., & Remia, A. (2010). Interactions between volcanism and tectonics in the western Aeolian sector, southern Tyrrhenian Sea. Geophysical Journal International, 183(1), 64–78. https://doi.org/10.1111/j.1365‐246X.2010.04729.x
    [Google Scholar]
  5. Colantoni, P. (1981). Carta litologica e stratigrafica dei mari italiani. Consiglio nazionale delle ricerche, Istituto per la geologia marina.
  6. Cuffaro, M., Riguzzi, F., Scrocca, D., & Doglioni, C. (2011). Coexisting tectonic settings: The example of the southern Tyrrhenian Sea. International Journal of Earth Sciences, 100(8), 1915–1924. https://doi.org/10.1007/s00531‐010‐0625‐z
    [Google Scholar]
  7. Curzi, P., Fabbri, A., & Nanni, T. (1980). The Messinian evaporitic event in the Sardinia Basin area (Tyrrhenian Sea). Marine Geology, 34(3–4), 157–170. https://doi.org/10.1016/0025‐3227(80)90070‐5
    [Google Scholar]
  8. de Astis, G., Ventura, G., & Vilardo, G. (2003). Geodynamic significance of the Aeolian volcanism (southern Tyrrhenian Sea, Italy) in light of structural, seismological, and geochemical data. Tectonics, 22(4), 1–17. https://doi.org/10.1029/2003TC001506
    [Google Scholar]
  9. Fabbri, A., Gallignani, P., & Zitellini, N. (1981). Geologic evolution of the peri‐Tyrrhenian sedimentary basins. In Consiglio nazionale delle ricerche. International conference. (pp. 101–126).
  10. Gabriela, F. V., Carlos, L. F., José, D. C. M., & Patricia, C. (2014). How much confidence can be conferred on tectonic maps of continental shelves? The Cantabrian‐fault case. Scientific Reports, 4(1), 3661.
    [Google Scholar]
  11. Hsü, K. J., Montadert, L., Bernoulli, D., Cita, M. B., Erickson, A., Garrison, R. E., Kidd, R. B., Mèlierés, F., Müller, C., & Wright, R. (1977). History of the Mediterranean salinity crisis. Nature, 267(5610), 399–403. https://doi.org/10.1038/267399a0
    [Google Scholar]
  12. Kastens, K., Mascle, J., Auroux, C., Bonatti, E., Broglia, C., Channell, J., Curzi, P., Emeis, K.‐C., Glaçon, G., Hasegawa, S., Hieke, W., Mascle, G., Mccoy, F., Mckenzie, J., Mendelson, J., MüLler, C., Réhault, J.‐P., Robertson, A., Sartori, R., … Torii, M. (1988). ODP leg 107 in the Tyrrhenian Sea: Insights into passive margin and back‐arc basin evolution. Geological Society of America Bulletin, 100(7), 1140–1156. https://doi.org/10.1130/0016‐7606(1988)1002.3.CO;2
    [Google Scholar]
  13. Kastens, K. A., & Mascle, J. (1990). The geological evolution of the Tyrrhenian Sea: An introduction to the scientific results of ODP leg 107. In K. A.Kastens & J.Mascle (Eds.), Proceedings of the ocean drilling program, scientific results. Ocean Drilling Program Vol 107, (pp. 3–26).
    [Google Scholar]
  14. Lentini, F., Carbone, S., & Guarnieri, P. (2006). Collisional and postcollisional tectonics of the Apenninic‐Maghrebian orogen (southern Italy). In Y.Dilek & S.Pavlides (Eds.), Postcollisional tectonics and magmatism in the Mediterranean region and Asia (p. 5781). Geological Society of America Special. https://doi.org/10.1130/2006.2409(04)
    [Google Scholar]
  15. Loreto, M. F., Düşünür‐Doğan, D., Üner, S., İşcan‐Alp, Y., Ocakoğlu, N., Cocchi, L., Muccini, F., Giordano, P., & Ligi, M. (2019). Fault‐controlled deep hydrothermal flow in a back‐arc tectonic setting, SE Tyrrhenian Sea. Scientific Reports, 9(1), 17724.
    [Google Scholar]
  16. Loreto, M. F., Palmiotto, C., Muccini, F., Ferrante, V., & Zitellini, N. (2021). Inverted basins by Africa–Eurasia convergence at the southern Back‐arc Tyrrhenian Basin. Geosciences, 11(3), 117.
    [Google Scholar]
  17. Lymer, G., Lofi, J., Gaullier, V., Maillard, A., Thinon, I., Sage, F., Chanier, F., & Vendeville, B. C. (2018). The Western Tyrrhenian Sea revisited: New evidence for a rifted basin during the Messinian salinity crisis. Marine Geology, 398, 1–21.
    [Google Scholar]
  18. Marani, M. P., & Trua, T. (2002). Thermal constriction and slab tearing at the origin of a superinflated spreading ridge: Marsili volcano (Tyrrhenian Sea). Journal of Geophysical Research: Solid Earth, 107(B9), 1–15. https://doi.org/10.1029/2001JB000285
    [Google Scholar]
  19. Mascle, G. H., Tricart, P., Torelli, L., Bouillin, J.‐P., Compagnoni, R., Depardon, S., Curzi, P., Emeis, K.‐C., Glaçon, G., Hasegawa, S., Hieke, W., Mascle, G., Mccoy, F., Mckenzie, J., Mendelson, J., MüLler, C., Réhault, J.‐P., Robertson, A., Sartori, R., … Poupeau, G. (2004). Structure of the Sardinia Channel: Crustal thinning and tardi‐orogenic extension in the Apenninic‐Maghrebian orogen; results of the Cyana submersible survey (SARCYA and SARTUCYA) in the western Mediterranean. Bulletin De La Société Géologique De France, 175(6), 607–627. https://doi.org/10.2113/175.6.607
    [Google Scholar]
  20. Mascle, G. H., Tricart, P., Torelli, L., Bouillin, J. P., Rolfo, F., Lapierre, H., Monié, P., Depardon, S., Mascle, J., & Peis, D. (2001). Evolution of the Sardinia Channel (Western Mediterranean): New constraints from a diving survey on Cornacya seamount off SE Sardinia. Marine Geology, 179, 179–201.
    [Google Scholar]
  21. Mascle, J., & Rehault, J. P. (1990). A revised seismic stratigraphy of the Tyrrhenian sea: Implications for the basin evolution. In K. A.Kastens, J.Mascle, et al. (Eds.), Proc. ODP, Sci. Results, 107. Ocean Drilling Program.
    [Google Scholar]
  22. Mattei, M., Cipollari, P., Cosentino, D., Argentieri, A., Rossetti, F., Speranza, F., & di Bella, L. (2002). The Miocene tectono‐sedimentary evolution of the southern Tyrrhenian Sea: Stratigraphy, structural and palaeomagnetic data from the on‐shore Amantea basin (Calabrian arc, Italy). Basin Research, 14(2), 147–168. https://doi.org/10.1046/j.1365‐2117.2002.00173.x
    [Google Scholar]
  23. Milia, A., Iannace, P., Tesauro, M., & Torrente, M. M. (2018). Marsili and Cefalù basins: The evolution of a rift system in the southern Tyrrhenian Sea (Central Mediterranean). Global and Planetary Change, 171, 225–237.
    [Google Scholar]
  24. Milia, A., Torrente, M. M., & Tesauro, M. (2017). From stretching to mantle exhumation in a triangular backarc basin (Vavilov basin, Tyrrhenian Sea, western Mediterranean). Tectonophysics, 710–711, 108–126. https://doi.org/10.1016/j.tecto.2016.10.017
    [Google Scholar]
  25. Milia, A., Turco, E., Pierantoni, P. P., & Schettino, A. (2009). Four‐dimensional tectono‐stratigraphic evolution of the southeastern peri‐Tyrrhenian basins (margin of Calabria, Italy). Tectonophysics, 476(1–2), 41–56.
    [Google Scholar]
  26. Moeller, S., Grevemeyer, I., Ranero, C. R., Berndt, C., Klaeschen, D., Sallarès, V., Zitellini, N., & de Franco, R. (2013). Early‐stage rifting of the northern Tyrrhenian Sea Basin: Results from a combined wide‐angle and multichannel seismic study. Geochemistry, Geophysics, Geosystems, 14(8), 3032–3052. https://doi.org/10.1002/ggge.20180
    [Google Scholar]
  27. Moeller, S., Grevemeyer, I., Ranero, C. R., Berndt, C., Klaeschen, D., Sallarès, V., Zitellini, N., & Franco, R. (2014). Crustal thinning in the northern Tyrrhenian rift: Insights from multichannel and wide‐angle seismic data across the basin. Journal of Geophysical Research: Solid Earth, 119(3), 1655–1677.
    [Google Scholar]
  28. Pepe, F., Sulli, A., Bertotti, G., & Cella, F. (2010). Architecture and Neogene to recent evolution of the western Calabrian continental margin: An upper plate perspective to the Ionian subduction system, Central Mediterranean. Tectonics, 29(3), 1–24.
    [Google Scholar]
  29. Pérez‐Gussinyé, M., Ranero, C. R., Reston, T. J., & Sawyer, D. (2003). Mechanisms of extension at nonvolcanic margins: Evidence from the Galicia interior basin, west of Iberia. Journal of Geophysical Research: Solid Earth, 108(B5), 2245. https://doi.org/10.1029/2001JB000901
    [Google Scholar]
  30. Pérez‐Gussinyé, M., & Reston, T. J. (2001). Rheological evolution during extension at nonvolcanic rifted margins: Onset of serpentinization and development of detachments leading to continental breakup. Journal of Geophysical Research: Solid Earth, 106(B3), 3961–3975.
    [Google Scholar]
  31. Prada, M., Ranero, C. R., Sallarès, V., Zitellini, N., & Grevemeyer, I. (2016). Mantle exhumation and sequence of magmatic events in the Magnaghi‐Vavilov Basin (central Tyrrhenian, Italy): New constraints from geological and geophysical observations. Tectonophysics, 689, 133–142. https://doi.org/10.1016/j.tecto.2016.01.041
    [Google Scholar]
  32. Prada, M., Sallarès, V., Ranero, C. R., Vendrell, M. G., Grevemeyer, I., Zitellini, N., & de Franco, R. (2014). Seismic structure of the central Tyrrhenian basin: Geophysical constraints on the nature of the main crustal domains. Journal of Geophysical Research: Solid Earth, 119(1), 52–70. https://doi.org/10.1002/2013JB010527
    [Google Scholar]
  33. Prada, M., Sallarès, V., Ranero, C. R., Vendrell, M. G., Grevemeyer, I., Zitellini, N., & de Franco, R. (2015). The complex 3‐D transition from continental crust to backarc magmatism and exhumed mantle in the central Tyrrhenian basin. Geophysical Journal International, 203(1), 63–78. https://doi.org/10.1093/gji/ggv271
    [Google Scholar]
  34. Prada, M., Sallares, V., Ranero, C. R., Vendrell, M. G., Grevemeyer, I., Zitellini, N., & de Franco, R. (2018). Spatial variations of magmatic crustal accretion during the opening of the Tyrrhenian back‐arc from wide‐angle seismic velocity models and seismic reflection images. Basin Research, 30, 124–141. https://doi.org/10.1111/bre.12211
    [Google Scholar]
  35. Presti, D., Billi, A., Orecchio, B., Totaro, C., Faccenna, C., & Neri, G. (2013). Earthquake focal mechanisms, seismogenic stress, and seismotectonics of the Calabrian arc, Italy. Tectonophysics, 602, 153–175.
    [Google Scholar]
  36. Ranero, C. R., & Pérez‐Gussinyé, M. (2010). Sequential faulting explains the asymmetry and extension discrepancy of conjugate margins. Nature, 468(7321), 294–299. https://doi.org/10.1038/nature09520
    [Google Scholar]
  37. Sartori, R. (2005). Bedrock geology of the Tyrrhenian Sea insight on alpine paleogeography and magmatic evolution of the basin. In I. R.Finetti (Ed.), CROP project: Deep seismic exploration of the central mediterranean and Italy (pp. 69–80). Elsevier.
    [Google Scholar]
  38. Sartori, R., Carrara, G., Torelli, L., & Zitellini, N. (2001). Neogene evolution of the southwestern Tyrrhenian Sea (Sardinia Basin and western bathyal plain). Marine Geology, 175(1–4), 47–66. https://doi.org/10.1016/S0025‐3227(01)00116‐5
    [Google Scholar]
  39. Sartori, R., Torelli, L., Zitellini, N., Carrara, G., Magaldi, M., & Mussoni, P. (2004). Crustal features along a W‐E Tyrrhenian transect from Sardinia to Campania margins (Central Mediterranean). Tectonophysics, 383(3–4), 171–192. https://doi.org/10.1016/j.tecto.2004.02.008
    [Google Scholar]
  40. Selli, R., Lucchini, F., Rossi, P. L., Savelli, C., & del Monte, M. (1977). Dati geologici, petrochimici e radiometrici sui vulcani centro‐tirrenici. Giornale di Geologia, 42, 221–246.
    [Google Scholar]
  41. Serpelloni, E., Bürgmann, R., Anzidei, M., Baldi, P., Ventura, B. M., & Boschi, E. (2010). Strain accumulation across the Messina Straits and kinematics of Sicily and Calabria from GPS data and dislocation modeling. Earth and Planetary Science Letters, 298(3–4), 347–360.
    [Google Scholar]
  42. Torelli, L., Cornini, S., Brancolini, G., & Zitellini, N. (1990). The Sardinia Channel (Central Mediterranean): A structural analysis of a submarine orogenic chain. Studi Geologici Camerti, 35–36.
    [Google Scholar]
  43. Trua, T., Serri, G., & Rossi, P. L. (2004). Coexistence of IAB‐type and OIB‐type magmas in the southern Tyrrhenian back‐arc basin: Evidence from recent seafloor sampling and geodynamic implications. In M. P.Marani, F.Gamberi, & E.Bonatti (Eds.), Memorie descrittive della carta geologica d'Italia (Vol. 44, pp. 83–96). Agenzia per la Protezione dell’Ambiente e per i Servizi Tecnici.
    [Google Scholar]
  44. Wernicke, B. (1981). Low‐angle normal faults in the basin and range province: Nappe tectonics in an extending orogen. Nature, 291, 645–648. https://doi.org/10.1038/291645a0
    [Google Scholar]
  45. Zitellini, N., Trincardi, F., Marani, M., & Fabbri, A. (1986). Neogene tectonics of the northern Tyrrhenian Sea. Giornale di Geologia, 48(1–2), 25–40.
    [Google Scholar]
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