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South Island

Petrogenesis of amphibole megacrysts in lamprophyric intraplate magmatism in southern New Zealand

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Pages 489-509 | Received 02 Apr 2020, Accepted 24 Jul 2020, Published online: 19 Aug 2020

References

  • Adam J, Green T. 2006. Trace element partitioning between mica- and amphibole-bearing garnet lherzolite and hydrous basanitic melt: 1. Experimental results and the investigation of controls on partitioning behaviour. Contributions to Mineralogy and Petrology. 152(1):1–17. doi: 10.1007/s00410-006-0085-4
  • Adams CJ, Cooper AF. 1996. K-Ar age of a lamprophyre dike swarm near Lake Wanaka, west Otago, South Island, New Zealand. New Zealand Journal of Geology and Geophysics. 39(1):17–23. doi: 10.1080/00288306.1996.9514691
  • Ben Othman D, Tilton GR, Menzies MA. 1990. Pb, Nd and Sr isotopic investigations of kaersutite and clinopyroxene from ultramafic nodules, and their host basalts: the nature of the subcontinental mantle. Geochimica et Cosmochimica Acta. 54(12):3449–3460. doi: 10.1016/0016-7037(90)90297-X
  • Best MG. 1974. Mantle-derived amphibole within inclusions in alkalic-basaltic lavas. Journal of Geophysical Research. 79(14):2107–2113. doi: 10.1029/JB079i014p02107
  • Binns RA. 1969. High-pressure megacrysts in basanitic lavas near Armidale, New South Wales. Americal Journal of Science. 267(A):33–49.
  • Bodinier J-L. 2004. Silicate, hydrous and carbonate metasomatism at Lherz, France: contemporaneous derivatives of silicate melt-harzburgite reaction. Journal of Petrology. 45(2):299–320. doi: 10.1093/petrology/egg107
  • Boettcher AL, O’Neil JR. 1980. Stable isotope, chemical, and petrographic studies of high-pressure amphiboles and micas : evidence for metasomatism in the mantle source regions of alkali basalts and kimberlites. American Journal of Science. 280(A):594–621.
  • Chauvel C, Lewin E, Carpentier M, Arndt NT, Marini J-C. 2008. Role of recycled oceanic basalt and sediment in generating the Hf–Nd mantle array. Nature Geoscience. 1(1):64–67. doi: 10.1038/ngeo.2007.51
  • Christensen NI, Mooney WD. 1995. Seismic velocity structure and composition of the continental crust: a global view. Journal of Geophysical Research. 100(B6):9761–9788. doi: 10.1029/95JB00259
  • Coltorti M, Beccaluva L, Bonadiman C, Faccini B, Ntaflos T, Siena F. 2004. Amphibole genesis via metasomatic reaction with clinopyroxene in mantle xenoliths from Victoria Land, Antarctica. Lithos. 75(1–2):115–139. doi: 10.1016/j.lithos.2003.12.021
  • Coltorti M, Bonadiman C, Faccini B, Grégoire M, O’Reilly SY, Powell W. 2007. Amphiboles from suprasubduction and intraplate lithospheric mantle. Lithos. 99(1–2):68–84. doi: 10.1016/j.lithos.2007.05.009
  • Cooper AF. 2020. Petrology and petrogenesis of an intraplate alkaline lamprophyre-phonolite-carbonatite association in the Alpine Dyke Swarm, New Zealand. New Zealand Journal of Geology and Geophysics. in press.
  • Cooper AF, Barreiro BA, Kimbrough DL, Mattinson JM. 1987. Lamprophyre dike intrusion and the age of the Alpine fault, New Zealand. Geology. 15(10):941–944. doi: 10.1130/0091-7613(1987)15<941:LDIATA>2.0.CO;2
  • Cooper AF, Paterson LA. 2008. Carbonatites from a lamprophyric dyke-swarm, South Westland, New Zealand. The Canadian Mineralogist. 46(4):753–777. doi: 10.3749/canmin.46.4.753
  • Czertowicz TA, Scott JM, Waight TE, Palin JM, Van der Meer QHA, Le Roux P, Münker C, Piazolo S. 2016. The Anita Peridotite, New Zealand: ultra-depletion and subtle enrichment in sub-arc mantle. Journal of Petrology. 57(4):717–750. doi: 10.1093/petrology/egw001
  • Dalton HB, Scott JM, Liu J, Waight TE, Pearson DG, Brenna M, Le Roux P, Palin JM. 2017. Diffusion-zoned pyroxenes in an isotopically heterogeneous mantle lithosphere beneath the Dunedin Volcanic Group, New Zealand, and their implications for intraplate alkaline magma sources. Lithosphere. 9(3):463–475. doi: 10.1130/L631.1
  • Dautria JM, Liotard JM, Cabanes N, Girod M, Briqueu L. 1987. Amphibole-rich xenoliths and host alkali basalts: petrogenetic constraints and implications on the recent evolution of the upper mantle beneath Ahaggar (Central Sahara, Southern Algeria). Contributions to Mineralogy and Petrology. 95(2):133–144. doi: 10.1007/BF00381263
  • Dickey JS. 1968. Eclogitic and other inclusions in the mineral breccia member of the Deborah volcanic formation at Kakanui, New Zealand. The American Mineralogist. 53:1304–1319.
  • Dobosi G, Downes H, Embey-Isztin A, Jenner GA. 2003. Origin of megacrysts and pyroxenite xenoliths from the Pliocene alkali basalts of the Pannonian Basin (Hungary). Neues Jahrbuch für Mineralogie – Abhandlungen. 178(3):217–237.
  • Downes H. 2001. Formation and modification of the shallow sub-continental lithospheric mantle: a review of geochemical evidence from ultramafic xenolith suites and tectonically emplaced ultramafic massifs of western and central Europe. Journal of Petrology. 42(1):233–250. doi: 10.1093/petrology/42.1.233
  • Finn CA, Müller RD, Panter KS. 2005. A Cenozoic diffuse alkaline magmatic province (DAMP) in the southwest Pacific without rift or plume origin. Geochemistry, Geophysics, Geosystems. 6(2):1–26. doi: 10.1029/2004GC000723
  • Foley SF, Andronikov AV, Melzer S. 2002. Petrology of ultramafic lamprophyres from the Beaver Lake area of Eastern Antarctica and their relation to the breakup of Gondwanaland. Mineralogy and Petrology. 74(2–4):361–384. doi: 10.1007/s007100200011
  • Frost DJ. 2006. The stability of hydrous mantle phases. Reviews in Mineralogy and Geochemistry. 62(1):243–271. doi: 10.2138/rmg.2006.62.11
  • Fulmer EC, Nebel O, van Westrenen W. 2010. High-precision high field strength element partitioning between garnet, amphibole and alkaline melt from Kakanui, New Zealand. Geochimica et Cosmochimica Acta. 74(9):2741–2759. doi: 10.1016/j.gca.2010.02.020
  • Gaina C, Müller DR, Royer J-Y, Stock J, Hardebeck J, Symonds P. 1998. The tectonic history of the Tasman Sea: a puzzle with 13 pieces. Journal of Geophysical Research. 103(B6):12413–12433. doi: 10.1029/98JB00386
  • Griffin WL, O’Reilly SY, Doyle BJ, Pearson NJ, Coopersmith H, Kivi K, Malkovets V, Pokhilenko N. 2004. Lithosphere mapping beneath the North American plate. Lithos. 77(1–4):873–922. doi: 10.1016/j.lithos.2004.03.034
  • Han B, Liu J, Zhang L. 2008. A noncognate relationship between megacrysts and host basalts from the Tuoyun Basin, Chinese Tian Shan. The Journal of Geology. 116(5):499–509. doi: 10.1086/590136
  • Hart SR. 1984. A large-scale isotope anomaly in the Southern Hemisphere mantle. Nature. 309(5971):753–757. doi: 10.1038/309753a0
  • Hawthorne FC, Oberti R, Harlow GE, Maresch WV, Martin RF, Schumacher JC, Welch MD. 2012. Nomenclature of the amphibole supergroup. American Mineralogist. 97(11–12):2031–2048. doi: 10.2138/am.2012.4276
  • Hoernle K, Timm C, Hauff F, Tappenden V, Werner R, Jolis EM, Mortimer N, Weaver S, Riefstahl F, Gohl K. 2020. Late Cretaceous (99-69 Ma) basaltic intraplate volcanism on and around Zealandia: tracing upper mantle geodynamics from Hikurangi Plateau collision to Gondwana breakup and beyond. Earth and Planetary Science Letters. 529:1–12. doi: 10.1016/j.epsl.2019.115864
  • Hoernle K, White JDL, van den Bogaard P, Hauff F, Coombs DS, Werner R, Timm C, Garbe-Schönberg D, Reay A, Cooper AF. 2006. Cenozoic intraplate volcanism on New Zealand: upwelling induced by lithospheric removal. Earth and Planetary Science Letters. 248(1–2):350–367. doi: 10.1016/j.epsl.2006.06.001
  • Ionov DA, Hofmann AW. 1995. Nb & Ta-rich mantle amphiboles and micas: implications for subduction-related metasomatic trace element fractionations. Earth and Planetary Science Letters. 131(3–4):341–356. doi: 10.1016/0012-821X(95)00037-D
  • Irving AJ, Frey FA. 1984. Trace element abundances in megacrysts and their host basalts: constraints on partition coefficients and megacryst genesis. Geochimica et Cosmochimica Acta. 48(6):1201–1221. doi: 10.1016/0016-7037(84)90056-5
  • Kesson S, Price RC. 1972. The major and trace element chemistry of kaersutite and its bearing on the petrogenesis of alkaline rocks. Contributions to Mineralogy and Petrology. 35(2):119–124. doi: 10.1007/BF00370923
  • Laird MG, Bradshaw JD. 2004. The break-up of a long-term relationship: the Cretaceous separation of New Zealand from Gondwana. Gondwana Research. 7(1):273–286. doi: 10.1016/S1342-937X(05)70325-7
  • Locock AJ. 2014. An Excel spreadsheet to classify chemical analyses of amphiboles following the IMA 2012 recommendations. Computers & Geosciences. 62:1–11. doi: 10.1016/j.cageo.2013.09.011
  • Mayer B, Jung S, Romer RL, Pfänder JA, Klügel A, Pack A, Gröner E. 2014. Amphibole in alkaline basalts from intraplate settings: implications for the petrogenesis of alkaline lavas from the metasomatised lithospheric mantle. Contrib Mineral Petrol. 167(3):1–22. doi: 10.1007/s00410-014-0989-3
  • McCoy-West AJ, Baker JA, Faure K, Wysoczanski R. 2010. Petrogenesis and origins of Mid-Cretaceous continental intraplate volcanism in Marlborough, New Zealand: implications for the long-lived HIMU magmatic mega-province of the SW Pacific. Journal of Petrology. 51(10):2003–2045. doi: 10.1093/petrology/egq046
  • McCoy-West AJ, Bennett VC, Amelin Y. 2016. Rapid Cenozoic ingrowth of isotopic signatures simulating “HIMU” in ancient lithospheric mantle: distinguishing source from process. Geochimica et Cosmochimica Acta. 187:79–101. doi: 10.1016/j.gca.2016.05.013
  • McCoy-West AJ, Bennett VC, O’Neill HSC, Hermann J, Puchtel IS. 2015. The interplay between melting, refertilization and carbonatite metasomatism in off-cratonic lithospheric mantle under Zealandia: an integrated major, trace and platinum group element study. Journal of Petrology. 56:563–604. doi: 10.1093/petrology/egv011
  • McCoy-West AJ, Bennett VC, Puchtel IS, Walker RJ. 2013. Extreme persistence of cratonic lithosphere in the southwest Pacific: Paleoproterozoic Os isotopic signatures in Zealandia. Geology. 41:231–234. doi: 10.1130/G33626.1
  • McDonough WF, Sun S-s. 1995. The composition of the Earth. Chemical Geology. 120(3–4):223–253. doi: 10.1016/0009-2541(94)00140-4
  • Merrill RB, Wyllie PJ. 1975. Kaersutite and kaersutite eclogite from Kakanui, New Zealand — water-excess and water-deficient melting to 30 kilobars. Geological Society of America Bulletin. 86(4):555–570. doi: 10.1130/0016-7606(1975)86<555:KAKEFK>2.0.CO;2
  • Mortimer N. 2004. New Zealand’s Geological Foundations. Gondwana Research. 7(1):261–272. doi: 10.1016/S1342-937X(05)70324-5
  • Mortimer N, Campbell HJ, Tulloch AJ, King PR, Stagpoole VM, Wood RA, Rattenbury MS, Sutherland R, Adams CJ, Collot J, Seton M. 2017. Zealandia: Earth’s hidden continent. GSA Today. 27(3):27–35. doi: 10.1130/GSATG321A.1
  • Mortimer N, Gans PB, Hauff F, Barker DHN. 2012. Paleocene MORB and OIB from the Resolution Ridge, Tasman Sea. Australian Journal of Earth Sciences. 59(6):953–964. doi: 10.1080/08120099.2012.676569
  • Nielson JE, Budahn JR, Unruh DM, Wilshire HG. 1993. Actualistic models of mantle metasomatism documented in a composite xenolith from Dish Hill, California. Geochimica et Cosmochimica Acta. 57(1):105–121. doi: 10.1016/0016-7037(93)90472-9
  • Pandey R, Rao NVC, Pandit D, Sahoo S, Dhote P. 2018. Imprints of modal metasomatism in the post-Deccan subcontinental lithospheric mantle: petrological evidence from an ultramafic xenolith in an Eocene lamprophyre, NW India. Geological Society, London, Special Publications. 463(1):117–136. doi: 10.1144/SP463.6
  • Panter KS. 2006. The origin of HIMU in the SW Pacific: evidence from intraplate volcanism in Southern New Zealand and subantarctic islands. Journal of Petrology. 47(9):1673–1704. doi: 10.1093/petrology/egl024
  • Pilet S, Ulmer P, Villiger S. 2010. Liquid line of descent of a basanitic liquid at 1.5 Gpa: constraints on the formation of metasomatic veins. Contributions to Mineralogy and Petrology. 159(5):621–643. doi: 10.1007/s00410-009-0445-y
  • Price RC. 2003. Phonolitic diatremes within the Dunedin Volcano, South Island, New Zealand. Journal of Petrology. 44(11):2053–2080. doi: 10.1093/petrology/egg070
  • Putirka K. 2016. Amphibole thermometers and barometers for igneous systems and some implications for eruption mechanisms of felsic magmas at arc volcanoes. American Mineralogist. 101(4):841–858. doi: 10.2138/am-2016-5506
  • Ridolfi F, Renzulli A. 2012. Calcic amphiboles in calc-alkaline and alkaline magmas: thermobarometric and chemometric empirical equations valid up to 1,130°C and 2.2 GPa. Contributions to Mineralogy and Petrology. 163(5):877–895. doi: 10.1007/s00410-011-0704-6
  • Rock NMS. 1991. Lamprophyres. Glasgow: Blackie and Sons Ltd.
  • Roden MK, Hart SR, Frey FA, Melson WG. 1984. Sr, Nd and Pb isotopic and REE geochemistry of St. Paul’s Rocks: the metamorphic and metasomatic development of an alkali basalt mantle source. Contributions to Mineralogy and Petrology. 85(4):376–390. doi: 10.1007/BF01150294
  • Salmon M, Kennett BLN, Stern T, Aitken ARA. 2013. The Moho in Australia and New Zealand. Tectonophysics. 609:288–298. doi: 10.1016/j.tecto.2012.07.009
  • Salters VJ, Stracke A. 2004. Composition of the depleted mantle. Geochemistry, Geophysics, Geosystems. 5(5):1–27. doi: 10.1029/2003GC000597
  • Scanlan E, Scott J, le Roux P. 2020. Pyro metamorphosed Otago Schist xenoliths reveal domainal equilibration and limited chemical contamination of host Dunedin Volcanic Group basanite. New Zealand Journal of Geology and Geophysics. in press.
  • Scott JM. 2013. A review of the location and significance of the boundary between the Western Province and Eastern Province, New Zealand. New Zealand Journal of Geology and Geophysics. 56(4):276–293. doi: 10.1080/00288306.2013.812971
  • Scott JM 2020. An updated catalogue of New Zealand’s mantle peridotite and serpentinite. New Zealand Journal of Geology and Geophysics, in press.
  • Scott JM, Brenna M, Crase JA, Waight TE, van der Meer QHA, Cooper AF, Michael Palin J, Le Roux P, Münker C. 2016a. Peridotitic lithosphere metasomatized by volatile-bearing melts, and its association with intraplate alkaline HIMU-like magmatism. Journal of Petrology. 57(10):2053–2078. doi: 10.1093/petrology/egw069
  • Scott JM, Hodgkinson A, Palin JM, Waight TE, Van der Meer QHA, Cooper AF. 2014a. Ancient melt depletion overprinted by young carbonatitic metasomatism in the New Zealand lithospheric mantle. Contributions to Mineralogy and Petrolology. 167(1):1–17.
  • Scott JM, Liu J, Pearson DG, Harris GA, Czertowicz TA, Woodland SJ, Luth RW. 2019. Continent stabilisation by lateral accretion of subduction zone-processed depleted mantle residues: insights from Zealandia. Earth & Planetary Science Letters. 507:175–186. doi: 10.1016/j.epsl.2018.11.039
  • Scott JM, Liu J, Pearson DG, Waight TE. 2016b. Mantle depletion and metasomatism recorded in orthopyroxene in highly depleted peridotites. Chemical Geology. 441:280–291. doi: 10.1016/j.chemgeo.2016.08.024
  • Scott JM, Muhling J, Fletcher I, Billia M, Palin JM, Elliot T, Günter C. 2011. The relationship of Palaeozoic metamorphism and S-type magmatism on the paleo-Pacific Gondwana margin. Lithos. 127(3–4):522–534. doi: 10.1016/j.lithos.2011.09.008
  • Scott JM, Pontesilli A, Brenna M, White JDL, Giacalone E, Palin JM, le Roux PJ. 2020. The Dunedin Volcanic Group and a revised model for Zealandia’s alkaline intraplate volcanism. New Zealand Journal of Geology and Geophysics. in press.
  • Scott JM, Waight TE, van der Meer QHA, Palin JM, Cooper AF, Münker C. 2014b. Metasomatized ancient lithospheric mantle beneath the young Zealandia microcontinent and its role in HIMU-like intraplate magmatism. Geochemistry, Geophysics, Geosystems. 15(9):3477–3501. doi: 10.1002/2014GC005300
  • Shaw CSJ, Eyzaguirre J. 2000. Origin of megacrysts in the mafic alkaline lavas of the West Eifel volcanic field, Germany. Lithos. 50(1–3):75–95. doi: 10.1016/S0024-4937(99)00048-1
  • Sprung P, Schuth S, Münker C, Hoke L. 2007. Intraplate volcanism in New Zealand: the role of fossil plume material and variable lithospheric properties. Contributions to Mineralogy and Petrology. 153(6):669–687. doi: 10.1007/s00410-006-0169-1
  • Stracke A, Hofmann AW, Hart SR. 2005. FOZO, HIMU, and the rest of the mantle zoo. Geochemistry, Geophysics, Geosystems. 6(5):1–20. doi: 10.1029/2004GC000824
  • Timm C, Hoernle K, Van Den Bogaard P, Bindeman I, Weaver S. 2009. Geochemical evolution of intraplate volcanism at Banks Peninsula, New Zealand: interaction between asthenospheric and lithospheric melts. Journal of Petrology. 50(6):989–1023. doi: 10.1093/petrology/egp029
  • Timm C, Hoernle K, Werner R, Hauff F, van den Bogaard P, White J, Mortimer N, Garbe-Schönberg D. 2010. Temporal and geochemical evolution of the Cenozoic intraplate volcanism of Zealandia. Earth-Science Reviews. 98(1–2):38–64. doi: 10.1016/j.earscirev.2009.10.002
  • Tulloch AJ, Nathan S. 1990. Spinel harzburgite xenoliths in alkali basalt and camptonite from North Westland and southeast Nelson, New Zealand. New Zealand Journal of Geology and Geophysics. 33(4):529–534. doi: 10.1080/00288306.1990.10421370
  • Ubide T, Galé C, Arranz E, Lago M, Larrea P. 2014. Clinopyroxene and amphibole crystal populations in a lamprophyre sill from the Catalonian Coastal Ranges (NE Spain): a record of magma history and a window to mineral-melt partitioning. Lithos. 184–187:225–242. doi: 10.1016/j.lithos.2013.10.029
  • Ulrych J, Krmíček L, Teschner C, Skála R, Adamovič J, Ďurišová J, Křížová Š, Kuboušková S, Radoň M. 2018. Chemistry and Sr-Nd isotope signature of amphiboles of the magnesio-hastingsite–pargasite–kaersutite series in Cenozoic volcanic rocks: insight into lithospheric mantle beneath the Bohemian Massif. Lithos. 312–313:308–321. doi: 10.1016/j.lithos.2018.05.017
  • van der Meer QHA, Scott JM, Serre SH, Whitehouse MJ, Kristoffersen M, le Roux PJ, Pope EC. 2019. Low-δ18O zircon xenocrysts in alkaline basalts; a window into the complex carbonatite-metasomatic history of the Zealandia lithospheric mantle. Geochimica et Cosmochimica Acta. 254:21–39. doi: 10.1016/j.gca.2019.03.029
  • van der Meer QHA, Scott J, Waight T, Sudo M, Scherstén A, Cooper A, Spell T. 2013. Magmatism during Gondwana break-up: new geochronological data from Westland, New Zealand. New Zealand Journal of Geology and Geophysics. 56(4):229–242. doi: 10.1080/00288306.2013.826699
  • van der Meer QHA, Storey M, Scott JM, Waight TE. 2016. Abrupt spatial and geochemical changes in lamprophyre magmatism related to Gondwana fragmentation prior, during and after opening of the Tasman Sea. Gondwana Research. 36:142–156. doi: 10.1016/j.gr.2016.04.004
  • van der Meer QHA, Waight TE, Scott JM, Münker C. 2017. Variable sources for Cretaceous to recent HIMU and HIMU-like intraplate magmatism in New Zealand. Earth and Planetary Science Letters. 469:27–41. doi: 10.1016/j.epsl.2017.03.037
  • van Der Meer QHA, Waight TE, Tulloch AJ, Whitehouse MJ, Andersen T. 2018. Magmatic evolution during the Cretaceous transition from subduction to continental break-up of the Eastern Gondwana margin (New Zealand) documented by in-situ zircon O–Hf isotopes and bulk-rock Sr–Nd isotopes. Journal of Petrology. 59(5):849–880. doi: 10.1093/petrology/egy047
  • Vaselli O, Downes H, Thirlwall M, Dobosi G, Coradossi N, Seghedi I, Szakacs A, Vannucci R. 1995. Ultramafic xenoliths in Plio-Pleistocene alkali basalts from the eastern Transylvanian Basin: depleted mantle enriched by vein metasomatism. Journal of Petrology. 36(1):23–53. doi: 10.1093/petrology/36.1.23
  • Vervoort JD, Blichert-Toft J. 1999. Evolution of the depleted mantle: Hf isotope evidence from juvenile rocks through time. Geochimica et Cosmochimica Acta. 63(3–4):533–556. doi: 10.1016/S0016-7037(98)00274-9
  • Waight TE. 1995. The geology and geochemistry of the Hohonu Batholith and adjacent rocks, North Westland, New Zealand [PhD dissertation]. Christchurch (NZ): University of Canterbury.
  • Waight TE, Weaver SD, Maas R, Eby GN. 1998a. French Creek Granite and Hohonu Dyke Swarm, South Island, New Zealand: late Cretaceous alkaline magmatism and the opening of the Tasman Sea. Australian Journal of Earth Sciences. 45(6):823–835. doi: 10.1080/08120099808728438
  • Waight TE, Weaver SD, Muir RJ. 1998b. Mid-Cretaceous granitic magmatism during the transition from subduction to extension in southern New Zealand: a chemical and tectonic synthesis. Lithos. 45(1–4):469–482. doi: 10.1016/S0024-4937(98)00045-0
  • White WM. 1993. 238U/204Pb in MORB and open system evolution of the depleted mantle. Earth and Planetary Science Letters. 115(1–4):211–226. doi: 10.1016/0012-821X(93)90223-V
  • Wilshire HG, Trask NJ. 1971. Structural and textural relationships of amphibole and phlogopite in peridotite inclusions, Dish hill, California. The American Mineralogist. 56:240–255.
  • Witt-Eickschen G. 2003. Lithospheric mantle evolution beneath the Eifel (Germany): constraints from Sr-Nd-Pb isotopes and trace element abundances in spinel peridotite and pyroxenite xenoliths. Journal of Petrology. 44(6):1077–1095. doi: 10.1093/petrology/44.6.1077
  • Witt-Eickschen G, Kaminsky W, Kramm U, Harte B. 1998. The nature of Young vein metasomatism in the lithosphere of the West Eifel (Germany): geochemical and isotopic Constraints from composite mantle xenoliths from the Meerfelder Maar. Journal of Petrology. 39(1):155–185. doi: 10.1093/petroj/39.1.155
  • Zanetti A, Vannucci R, Oberti R, Ottolini L. 1996. Infiltration metasomatism at Lherz as monitored by systematic ion-microprobe investigations close to a homblendite vein. Chemical Geology. 134:113–133. doi: 10.1016/S0009-2541(96)00080-0

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