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Nd-Sr isotopic characteristics of the Lugano volcanic rocks and constraints on the continental crust formation in the South Alpine domain (N-Italy-Switzerland)

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Abstract

The Rb-Sr and Sm-Nd isotope data emphasize the importance of mantle crust interaction, wall-rock assimilation and fractional crystallization for the generation of the Lugano volcanic rocks. It is suggested that the parental magma generation occurs in hot upwelling asthenosphere in the wedge above a subducting slab. In the lower crust the rising mantle derived melts became strongly modified by crust assimilation and formed andesitic melts. These andesitic melts, rising from this lower crustal region, became additionally modified by fractional crystallization and further assimilation of lower and upper crustal components to form the dacites, rhyolites, granophyres and Mt. OrfanoBaveno granites. The best fit lines to the Rb-Sr and Sm-Nd isotope whole rock data points correspond to ages of 346+/− 2 m.y. and 341+/−40 m.y., respectively. These lines are considered to be “pseudo-isochrons” and the result of simultaneously running fractional crystallization and wallrock assimilation. The best age estimate of the investigated volcanites is given by a Rb-Sr mineral isochron of 262+/−I m.y.. It dates a single volcanic event of the Permo-Carboniferous magmatism. Since it is suggested, that the calc-alkaline rock sequence has been generated in an Andean type subduction environment, synchronous with the final phase of convergence of Gondwana and Laurasia, the Rb-Sr mineral isochron indicates, that parts of the Proto-Tethys closed later than 262 m.y. ago. The crustal source material of the Irvea and Strona-Ceneri paragneisses, Lugano volcanites and Mt. Orfano-Baveno intrusive rocks may not necessarily be derived from a shield area in Northern Europe or Africa but may come from a Proterozoic European continental lithosphere.

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References

  • Adams CJ (1976) Geochronology of the Channel Islands and the adjacent French mainland. Geol Soc London 132:233–250

    Google Scholar 

  • Allègre CJ, Ben Othman D (1980) Nd-Sr isotopic relationship in granitoid rocks and continental crust development: a chemical approach to orogenesis. Nature 286:335–342

    Google Scholar 

  • Allègre CJ, Rousseau D (1984) The growth of the continent through geological time studied by Nd isotope analysis of shales. Earth Plant Sci Lett 67:19–34

    Google Scholar 

  • Ben Othman D, Polve M, Allègre CJ (1984) Nd-Sr isotopic composition of granulites and constraints on the evolution of the lower continental crust. Nature 307:510–515

    Google Scholar 

  • Boriani A, Bigioggero B, Origoni Giobbi E (1977) Metamorphism, tectonic evolution and tentative stratigraphy of the “ Serie dei Laghi” geological map of Verbania area (northern Italy). Mem Ist Geol Mineral Univ Padova 32:1–25

    Google Scholar 

  • Buletti M (1985) Petrographisch-geochemische Untersuchungen im Luganer Porphyrgebiet. Thesis University Berne, Switzerland, pp 1–157

    Google Scholar 

  • Calvez JY, Vidal Ph (1978) Two billion years old relicts in the Hercynian belt of Western Europe. Contrib Mineral Petrol 65:395–399

    Google Scholar 

  • Capdevila R, Vidal Ph (1975) Données géochimiques et radiomé-triques sur les granulites et charnockites de la marge continen-tale nord-espagnole (Golfe de Gascogne). R.A.S.T. Montpellier, p 89

    Google Scholar 

  • Cogné J (1962) Le Briovérien: Esquisse des caractères stratigraphiques, metamorphiques, structuraux et paléogéographiques de l'Antécambrien récent dans la Massif Amoricain. Bull Soc Geol Fr 7/IV: 413–430

    Google Scholar 

  • DePaolo DJ (1981) Trace element and isotopic effects of combined wallrock assimilation and fractional crystallization. Earth Planet Sci Lett 53:189–202

    Google Scholar 

  • DePaolo DJ, Wasserburg GJ (1976) Inferences about magma sources and mantle structure from variations of 143Nd/144Nd. Geophys Res Lett 3:743–746

    Google Scholar 

  • DePaolo DJ, Wasserburg GJ (1979) Petrogenetic mixing models and Nd-Sr isotopic patterns. Geochim Cosmochim Acta 43:615–627

    Google Scholar 

  • DePaolo DJ (1980) Sources of continental crust: neodymium isotope evidence from the Sierra Nevada and Peninsular Ranges. Science 209:684–687

    Google Scholar 

  • De Souza HAF (1982) Age data from Scotland and the Carboniferous time scale. In: Odin GS (ed) Numerical dating in stratigraphy, pp 455–465

  • Dozy JJ (1935) Über das Perm der Südalpen. Leidse Geol Meded VII/1:41–62

    Google Scholar 

  • Farmer GL, DePaolo DJ (1983) Origin of Mesozoic and Tertiary granite in the Western United States and implications for Pre-Mesozoic crustal structure. 1. Nd and Sr isotopic studies in the Geocline of the northern Great Basin. J Geophys Res 88B4:3379–3401

    Google Scholar 

  • Gebauer D (1982) Petrology, isotopegeology and geodynamics in the Hercynides. F.I.E.C. Terra cognita 3:320–321

    Google Scholar 

  • Gebauer D (1986) The development of the continental crust of the European Hercynides since the Archean based on radiometric data. 3rd EGT Workshop: 15–23

  • Gebauer D, Grünenfelder M (1982) Geological development of the Hercynian belt of Europe based on age and origin of high-grade and high-pressure mafic and ultramafic rocks. 5th Conf Geochron. Cosmochronology and Isotope Geology. Abstract: pp 111–112

  • Giese P (1968) Die Struktur der Erdkruste im Bereich der Ivrea zone. Ein Vergleich verschiedener seismischer Interpretationen und der Versuch einer petrographisch-geologischen Deutung. Schweiz Mineral Petrol Mitt 48:261–284

    Google Scholar 

  • Goldstein S, O'Nions RK, Hamilton PJ (1984) A Sm-Nd isotopic study of atmospheric dusts and particulates from major river systems. Earth Planet Sci Lett 70:221–236

    Google Scholar 

  • Hamilton PJ, O'Nions RK, Pankhurst RJ (1980) Isotopic evidence for the provenance of some Caledonian granites. Nature 287:279–284

    Google Scholar 

  • Heier SK (1965) Metamorphism and the chemical differentiation of the crust. Geol Foeren Stockholm Foerh 87:249–256

    Google Scholar 

  • Hunziker JC (1974) Rb-Sr and K-Ar age determination and the alpine tectonic history of the Western Alps. Mem Ist Geol Mineral Univ Padova 31:1–54

    Google Scholar 

  • Hunziker JC, Zingg A (1980) Lower palaeozoic amphibolite to granulite facies metamorphism in the Ivrea zone (Southern Alps, Northern Italy). Schweiz Mineral Petrogr Mitt 60:181–213

    Google Scholar 

  • Jacobsen SB, Wasserburg GJ (1979) The mean age of mantle and crustal reservoirs. J Geophys Res 84:7411–7428

    Google Scholar 

  • Jäger E (1977) The evolution of the Central and West European continent. La chaine varisque d'Europe moyenne et occidentale. Cogné J (ed) CNRS, Paris, pp 227–239

    Google Scholar 

  • Jäger E (1983) The age of the continental crust of Central, Southern and Western Europe — arguments from geochemistry and isotope geology. Schweiz Mineral Petrogr Mitt 63:339–346

    Google Scholar 

  • Jaupart C, Sclater JG, Simmons G (1981) Heat flow studies: constraints on the distribution of uranium, thorium and potassium in the continental crust. Earth Planet Sci Lett 52:328–344

    Google Scholar 

  • Jongmans WJ (1950) Mitteilungen zur Karbonflora der Schweiz. Eclogae Geol Helv 43:95–104

    Google Scholar 

  • Jongmans WJ (1960) Die Karbonflora der Schweiz. Beitr Geol Karte Schweiz, NF, p 108

    Google Scholar 

  • Kaech M (1903) Geologisch-petrographische Untersuchung des Porphyrgebietes zwischen Lago Maggiore und Valsesia. Eclo-gae Geol Helv 8/1:47–164

    Google Scholar 

  • Köppel V (1974) Isotopic U-Pb ages of monazites and zircons from the crust-mantle transition and adjacent units of the Ivrea and Ceneri zones (Southern Alps, Italy). Contrib Mineral Petrol 43:55–70

    Google Scholar 

  • Köppel V, Grünenfelder M (1971) A study of inherited and newly formed zircons from paragneisses and granitised sediments of the Strona-Ceneri zone (Southern Alps). Schweiz Mineral Petrogr Mitt 51:385–409

    Google Scholar 

  • Köppel V, Grünenfelder M (1978/1979) Monazite and zircon U-Pb ages from the Ivrea and Ceneri zones. Abstract. 2nd symposium Ivrea-Verbano, Varallo. Mem Sci Geol 33:257

    Google Scholar 

  • Lewis JF (1971) Composition, origin and differentiation of basalt magma in the Lesser Antilles. Geol Soc Am Mem 130:159–179

    Google Scholar 

  • McCulloch MT, Chappell BW (1982) Nd isotopic characteristics of S- and I-type granites. Earth Planet Sci Lett 58:51–64

    Google Scholar 

  • McCulloch MT, Wasserburg GJ (1978) Sm-Nd and Rb-Sr chronology of continental crust formation. Science 200:1003–1011

    Google Scholar 

  • McDowell FW (1970) Potassium Argon ages from the Ceneri zone. Southern Swiss Alps. Contrib Mineral Petrol 28:165–182

    Google Scholar 

  • McLennan SM, Taylor SR (1983) Continental freeboard, sedimentation rates and growth of continental crust. Nature 306:169–171

    Google Scholar 

  • Michard A, Gurriet P, Soudant M, Albarede F (1985) Nd isotopes in French Phanerozoic shales: external vs internal aspects of crustal evolution. Geochim Cosmochim Acta 49:601–610

    Google Scholar 

  • Miller CF, Mittlefehldt DW (1982) Depletion of light rare earth elements in felsic magmas. Geology 10:129–133

    Google Scholar 

  • Miller RG, O'Nions RK (1984) The provenance and crustal residence ages of British sediments in relation to palaeogeographic reconstructions. Earth Planet Sci Lett 68:459–470

    Google Scholar 

  • Nakamura N, Tatsumoto M, Nunes PD, Unruh DM, Schwab AR, Wildeman TR (1976) Apollo 17: a comprehensive chronological study by U-Pb, Rb-Sr and Sm-Nd methods. Proc Lunar Sci Conf 7th Geochim Cosmochim Acta Suppl 7:2309–2333

    Google Scholar 

  • Nockolds SR (1954) Average chemical compositions of some igneous rocks. Bull Geol Soc Am 65:1007–1032

    Google Scholar 

  • O'Nions RK, Hamilton PJ, Kooker PJ (1983) A Nd isotope investigation of sediments related to crustal development in the British Isles. Earth Planet Sci Lett 63:229–240

    Google Scholar 

  • Pichler H (1959) Neue Ergebnisse zur Gliederung der unterpermischen Eruptivfolge der Bozener Porphyr-Platte. Geol Rundsch 48:112–131

    Google Scholar 

  • Pin C (1986) Datation U-Pb sur zircons a 285 Ma du complexe gabbro-dioritique du Val Sesia-Val Mastallone et age tardihercynien du metamorphisme granulitique de la zone Ivrea-Verbano (Italy). CR Acad Sci Paris 303/11/9:827–830

    Google Scholar 

  • Pin C, Sills JD (1986) Petrogenesis of layered gabbros and ultra-mafics from the Ivrea zone. NW Italy: Trace element and isotope geochemistry. In: The nature of the lower continental crust. Geol Soc Spec Publ No 25:231–249

    Google Scholar 

  • Reinhard M (1964) Über das Grundgebirge des Sottoceneri im Sued-Tessin und die darin auftretenden Ganggesteine. Beitr Geol Karte Schweiz NF 117:89

    Google Scholar 

  • Shaw DM (1968) A review of K-Rb fractionation trends by co-variance analysis. Geochim Cosmochim Acta 32:573–609

    Google Scholar 

  • Sitter LU de (1939) Les porphyres Luganois et leur enveloppes. L'histoire geologique des Alpes Tessinoises entre Lugano et Varese. Leidse Geol Meded XI: 1–61

    Google Scholar 

  • Steiger R, DePaolo DJ (1985) Neodymium and strontium isotope evidence bearing on the pre-Masozoic evolution of the Central Alpine basement. EOS 66:420

    Google Scholar 

  • Steiger R, DePaolo DJ (1986) Genealogy of the basement of the Central Alps. Terra Cognita 6/2:127

    Google Scholar 

  • Stern CR, Wyllie PJ (1981) Phase relationships of I-type granite with H20 to 35 kilobars: the Dinkey Lakes biotite-granite from the Sierra Nevada batholith. J Geophys Res Lett 86:10412–10422

    Google Scholar 

  • Stille P (1980) On the genesis of the amphibolites and hornblende-felses in the Berisal complex (Italy-Switzerland). Mem Ist Geol Mineral Padova 34:205–246

    Google Scholar 

  • Stille P, Tatsumoto M (1985) Precambrian tholeiitic-dacitic rock suites and Cambrian ultramafic rocks in the Pennine nappe system of the Alps: Evidence from Sm-Nd isotopes and rare eath elements. Contrib Mineral Petrol 89:184–192

    Google Scholar 

  • Stille P, Unruh DM, Tatsumoto M (1986) Pb, Sr, Nd and Hf isotopic constraints on the origin of Hawaiian basalts and evidence for a unique mantle source. Geochim Cosmochim Acta 50:2303–2319

    Google Scholar 

  • Vai GB (1980a) Tracing the Hercynian structural zones across ‘Neo-Europa’: An Introduction. Mem Geol Soc It 20:39–45

    Google Scholar 

  • Vai GB (1980b) Pre-Paleozoique et Paleozoique Prevarisque.In:Introduction a la geologie generale d'Italie. 26th Congr Geol Int Paris G13:53–60

    Google Scholar 

  • Vidal Ph (1976) L'évolution polyorogénique du Massif Amoricain: tapport de la géochronologie et de la geochimie isotopique du strontium. Thesis, Rennes, France

  • York D (1966) Least squares fitting of a straight line. Can J Phys 44:1079–1084

    Google Scholar 

  • Ziegler PA (1984) Caledonian and Hercynian crustal consolidation of western and central Europe — A working hypothesis. Geol Mijnbouw 63:93–108

    Google Scholar 

  • Zingg A (1983) The Ivrea and Strona Ceneri zones (Southern Alps. Ticino and N-Italy)- A review. Schweiz Mineral Petrol Mitt 63:361–392

    Google Scholar 

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Stille, P., Buletti, M. Nd-Sr isotopic characteristics of the Lugano volcanic rocks and constraints on the continental crust formation in the South Alpine domain (N-Italy-Switzerland). Contr. Mineral. and Petrol. 96, 140–150 (1987). https://doi.org/10.1007/BF00375228

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