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Nb-Ta oxide minerals from miarolitic pegmatites of the Baveno pink granite, NW Italy

Published online by Cambridge University Press:  05 July 2018

C. Aurisicchio*
Affiliation:
C.S. Equilibri Sperimentali in Minerali e Rocce, C.N.R., P. le A. Moro 5, 00185 Rome, Italy
C. De Vito
Affiliation:
Dipartimento di Scienze della Terra, Università ‘La Sapienza’, P. le A. Moro 5, 00185 Rome, Italy
V. Ferrini
Affiliation:
Dipartimento di Scienze della Terra, Università ‘La Sapienza’, P. le A. Moro 5, 00185 Rome, Italy
P. Orlandi
Affiliation:
Dipartimento di Scienze della Terra, Universitá di Pisa, Via S. Maria 53, 56126 Pisa, Italy
*

Abstract

Chemical composition and cell parameters were ascertained on new data from Ti-Nb-Ta complex oxides from the miarolitic pegmatites of the Baveno pink granite (Southern Alps, NW Italy). The crystals are tiny, single or aggregated in small sprays, prismatic or tabular, from yellow-orange to brownish in colour. Typical associated minerals include fluorite, zinnwaldite, gadolinite-group minerals and Sc-minerals. Cavity paragenesis is typical of NYF pegmatites, and shows two stages of crystallization developing in magmatic-pneumatolitic and hydrothermal conditions. X-ray data show that some oxides belong to the aeschynite mineral group; others are polycrase and fersmite. Aeschynite and polycrase are chemically heterogeneous and structurally disordered because of their metamict state. This disorder does not always seem to be related to radionuclide contents. Two main trends are indicated, considering the behaviour of Y. The high Y contents fit with very low Ca and LREE contents in the A site; the HREE contents follow the Y trend. In the B site, Ti is the dominant cation, followed by some Nb and very little Ta. Small quantities of Y fit with increasing Ca, U, Th and REE contents. In the B site, Nb cations often exceed those of Ti. The Th contents are often greater than those of U. Besides the already known aeschynite-(Y) and vigezzite, new varieties, ‘titano-vigezzite’ and ‘niobo-aeschynite-(Y)’, are identified here in the Baveno miarolitic cavities. Samples 14 (analysis a) and 2502 (analysis b) have Ca as the main occupant of the A site, followed by Y, Th and REE; in the B site, Ti prevails over Nb. These compositions cannot be considered as pure vigezzite, but as a new variety called ‘titano-vigezzite’. In the same way, analysis a of sample 3 may be considered a new variety of aeschynite-(Y), with Nb prevailing over Ti in the B site, and here called ‘niobo-aeschynite-(Y)’. Neither variety has ever been mentioned in the literature. Epitaxial growth of aeschynite on polycrase (sample 3194) allows some inferences on the crystallization sequence.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2001

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References

Albertini, C. (1983) Famous mineral localities: Baveno Italy. Mineral. Record., 13, 157–68.Google Scholar
Åmli, R. and Griffin, W.L. (1975) Microprobe analysis of REE minerals using empirical correction factors. Amer. Mineral., 60, 599606.Google Scholar
Appleman, D.E. and Evans, H.T. Jr., (1973) Job 9214: Indexing and least-squares refinement of other diffracti on data. U.S. Geol. Surv., Computer Contributions. 9 (NTIS document PB2-16188).Google Scholar
Arkhangel’skaya, V.V. (1985) Distribution of the rare-earth elements and yttrium in east Siberian fracture-controlled alkali feldspar metasomatites. Geokhimiya., 2, 194200.Google Scholar
Aurisicchio, C., De Vito, C., Ferrini, V. and Orlandi, P. (1998) Complex Ti, Nb, Ta, oxides from Baveno, Elba Island and Val Vigezzo (north of Italy). IMA, 17th General Meeting., Toronto). Prog Abstr., A149.Google Scholar
Aurisicchio, C., De Vito, C., Ferrini, V., Guastoni, A. and Pezzotta, F. (1999) Ti-Nb-Ta-REE oxides in the NYF pegmatites of Baveno and Cuasso al Monte, Southern Alps, Italy. Canad. Mineral., 37, 809–10.Google Scholar
Belkasmi, M., Cuney, M., Pollard, P.J. and Bastoul, A. (2000) Chemistry of the Ta-Nb-Sn-W oxide minerals from the Yichun rare metal granite (SE China): genetic implications and comparison with Moroccan and French Hercynian examples. Mineral. Mag., 64, 507–23.CrossRefGoogle Scholar
Bonazzi, P. and Magnanelli, S. (1994) Non-metamict Ti-rich aeschynite-(Y) from the Triolet Valley (Western Alps, Italy). Neues Jahrb. Mineral. Mh., 275–88.Google Scholar
Bonazzi, P. and Menchetti, S. (1999) Crystal chemistry of aeschynite-(Y) from the Western Alps: residual electron density on difference-Fourier map. Eur. J. Mineral., 11, 1043–9.CrossRefGoogle Scholar
Bonin, B. (1988) From orogenic to anorogenic environments: evidence from associated magmatic episodes. Schweiz. Mineral. Petr. Mitt., 68, 301–11.Google Scholar
Boriani, A., Pinarelli, L. and Del Moro, A. (1988 a) Rb-Sr geochronology of Lower Permian plutonism in Massiccio dei Laghi, Southern Alps (NW Italy). Rend. Soc. It. Min. Petr., 43, 411–28.Google Scholar
Boriani, A., Burlini, L., Caironi, V., Giobbi Origoni, E., Sassi, A. and Sesana, E. (1988 b) Geological and petrological studies on the hercynian plutonism of Serie dei Laghi – geological map of its occurrence between Valsesia and Lago Maggiore (N. Italy). Rend. Soc. It. Min. Petr., 43, 367–84.Google Scholar
Boriani, A., Caironi, V., Giobbi Origoni, E. and Vannucci, R. (1992) The Permian intrusive rocks of Serie dei Laghi (Western Southern Alps). Acta Vulcanol., 2, 7386.Google Scholar
Caironi, V. (1985) Characterization of different granitic facies in the Baveno-Mottarone pluton by means of the typologic study of zircon populations. Rend. SIMP, 40, 341–52.Google Scholar
Černý, P. (1990) Distribution, affiliation and derivation of rare-element granitic pegmatites in the Canadian Shield. Geol. Runds., 79, 183–226.CrossRefGoogle Scholar
Černý, P. (1997) Miarolitic Pegmatites: Categories and Af. liations. Petrology, Rare Minerals and Gemstones of Shallow-Depth Pegmatites. Abstracts of the First International Workshop. Milan, Italy.Google Scholar
Černý, P. and Ercit, T.S. (1985) Some recent advances in the mineralogy and geochemistry of Nb and Ta in rare-element granitic pegmatites. Bull. Minéral., 108, 499532.CrossRefGoogle Scholar
Černý, P. and Ercit, T.S. (1989) Mineralogy of Niobium and Tantalum: crystal chemical relationships, paragenetic aspects and their economic implications. Pp. 2779 in: Lanthanides, Tantalum and Niobium., (Möller, P., Černý, P. and Saupé, R., editors). Springer-Verlag, Berlin and Heidelberg.CrossRefGoogle Scholar
Černý, P., Meintzer, R.E. and Anderson, A.J. (1985) Extreme fractionation in rare-element granitic pegmatites: selected examples of data and mechanism. Canad. Mineral., 23, 381421.Google Scholar
Chakhmouradian, A.R. and Mitchell, R.H. (1998) Lueshite, pyrochlore and monazite-(Ce) from apatite-dolomite carbonatite, Lesnaya Varaka complex, Kola Peninsula, Russia. Mineral. Mag., 62, 769–82.CrossRefGoogle Scholar
De Vito, C. (1998) Minerali di Nb e Ta nelle pegmatiti dell’Isola d’Elba, di Baveno e della Val d’Ossola: caratterizzazione geochimica e cristallochimica. Degree thesis, Univ. Rome “La Sapienza”, Italy.Google Scholar
Drake, M.J. and Weill, D.F. (1972) New rare earth element standards for electron microprobe analysis. Chem. Geol., 10, 1179–81.CrossRefGoogle Scholar
Ewing, R.C. (1975) Alteration of metamict, rare-earth, AB2O6 type Nb-Ta-Ti oxides. Geochim. Cosmochim. Acta., 9, 521–30.CrossRefGoogle Scholar
Ewing, R.C. (1976) A numerical approach toward the classification of complex, orthorhombic, rare-earth, AB2O6 type Nb-Ta-Ti oxides. Canad. Mineral., 14, 111–9.Google Scholar
Ewing, R.C. and Chakoumakos, B.C. (1982) Lanthanide, Y, Th, U, Zr, and Hf minerals: selected structure de scriptions. (Černý, P. editor ). Mineralogical Association of Canada.Google Scholar
Ewing, R.C. and Ehlmann, A.J. (1975) Annealing study of metamict, orthorhombic, rare-earth, AB2O6 type Nb-Ta-Ti oxides. Canad. Mineral., 13, 17.Google Scholar
Fleischer, M., Cabri, L.J., Chao, G.Y. and Pabst, A. (1980) New mineral names. Amer. Mineral., 65, 808–14.Google Scholar
Gaines, R.V., Skinner, C., Foord, E.E., Mason, B. and Rosenzweig, A. (1997) Dana's New Mineralogy., J. Wiley & Sons, New York and Chichester.Google Scholar
Garvey, R. (1986) Least squares unit-cell refinement with indexing on the personal computer. Powder Diffraction, 1, 144.Google Scholar
Graeser, S., Schwander, H., Hänni, H. and Mattioli, V. (1979) Vigezzite, (Ca, Ce) (Nb, Ta, Ti)2 O6 a new aeschynite-type mineral from the Alps. Mineral. Mag., 43, 459–62.CrossRefGoogle Scholar
Gorzheevskaya, S.A., Sidorenko, G.A. and Ginsburg, A.I. (1974) Titano-tantalo-niobat es (properties, compositional characteristics and conditions of formation)., Nedra, Moscow (in Russian).Google Scholar
Hanson, S.L., Simmons, W.B., Webber, K.L. and Falster, A.U. (1992) Rare-earth-element mineralogy of granitic pegmatites in the Trout Creek Pass distri ct, Chaffee County, Colorado. Canad. Mineral., 30, 673–86.Google Scholar
Lumpkin, G.R. and Ewing, R.C. (1988) Alpha-decay damage in minerals of the pyrochlore group. Phys. Chem. Miner., 16, 220.CrossRefGoogle Scholar
Mineyev, D.A. (1963) Geochemical differentation of the rare earths. Geokhimiya, 12, 110822–1100.Google Scholar
Nova, G. (1987) Atlante dei minerali di Baveno. Gruppo Mineralogico Lombardo., Vega s.a.s. Milano.Google Scholar
Orlandi, P., Pasero, M. and Vezzalini, G. (1998) Scandiobabingt onite, a new mineral from the Baveno pegmatite, Piedmont, Italy. Amer. Mineral., 83, 1330–4.CrossRefGoogle Scholar
Pezzotta, F., Diella, V. and Guastoni, A. (1999 a) Chemical and paragenetic data on gadolinite-group minerals from Baveno and Cuasso al Monte, Southern Alps, Italy. Amer. Mineral., 4, 782–9.CrossRefGoogle Scholar
Pezzotta, F., Diella, V. and Guastoni, A. (1999 b) Sc-YREE minerals and evolution of miarolitic cavities in the NYF pegmatites in the western Southern Alps, Italy. Canad. Mineral., 37, 805–6.Google Scholar
Pinarelli, L. (1993) U-Th-Pb and Rb-Sr decoupling in poly-metamorphic rocks; influences on the primary petrological information. C.N.R. Report., 8 2/93, 33.Google Scholar
Pinarelli, L., Boriani, A. and Del Moro, A. (1988) Rb-Sr geochronology of the Lower Permian plutonism in the Massiccio Dei Laghi, Southern Alps (NW Italy). Rend. Soc. It. Mineral. Petrol., 43, 411–28.Google Scholar
Robles, E.R., Perez, A.P., Roldan, F.V. and Fontan, F. (1999) The granitic pegmatites of the Fregeneda area (Salamanca, Spain): characteristics and petrogenesis. Mineral. Mag., 63, 535–58.CrossRefGoogle Scholar
Roeder, P.L. (1985) Electron-Microprobe analysis of minerals for Rare-Earth elements: use of calculated peak-overlap corrections. Canad. Mineral., 23, 263–71.Google Scholar
Van Wambeke, L. (1970) The alteration processes of the complex titano-niobo-tantalates and their consequences. Neues Jahrb. Mineral. Abh., 112, 117–49.Google Scholar