Discovery of antiskarn-hosted strategic metal mineralization in the Upper Cretaceous Twihinate carbonatite intrusion (West African Craton Margin, Moroccan Sahara)
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Andersen, 2017, REE fractionation, mineral speciation, and supergene enrichment of the Bear Lodge carbonatites, Wyoming, USA, Ore Geol. Rev., 89, 780, 10.1016/j.oregeorev.2017.06.025
Anenburg, 2018, Carbonatitic versus hydrothermal origin for fluorapatite REE-Th deposits: Experimental study of REE transport and crustal “antiskarn” metasomatism, Amer. Jour. Sci, 318, 335, 10.2475/03.2018.03
Anenburg, 2020, The fluorapatite P-REE–Th vein deposit at Nolans Bore: Genesis by carbonatite metasomatism, J. Petrol., 61, egaa003, 10.1093/petrology/egaa003
Anenburg, 2020, Rare earth element mobility in and around carbonatites controlled by sodium, potassium, and silica, Sci. Adv., 6, eabb6570, 10.1126/sciadv.abb6570
Anenburg, 2021, Formation of rare earth deposits in carbonatites, Elements, 17, 327, 10.2138/gselements.17.5.327
Atencio, 2010, The pyrochlore supergroup of minerals: nomenclature, Canad. Mineral, 48, 673, 10.3749/canmin.48.3.673
Bailey, 2002, High-Ti magnetite in some fine-grained carbonatites and the magmatic implications, Miner. Mag, 66, 379, 10.1180/0026461026630035
Bea, 2013, 2.46 Ga kalsilite and nepheline syenites from the Awsard pluton, Reguibat Rise of the West African Craton, Morocco. Generation of extremely K-rich magmas at the Archean-Proterozoic transition, Precambr. Res., 224, 242, 10.1016/j.precamres.2012.09.024
Bea, 2014, Kalsilite-bearing plutonic rocks: the deep-seated Archean Awsard massif of the Reguibat Rise, South Morocco, West African Craton. Earth. Sci. Rev, 138, 1
Bea, 2016, First Evidence for Cambrian Rift-related Magmatism in the West African Craton margin: the Derraman Peralkaline Felsic Complex, Gondwana Res., 36, 423, 10.1016/j.gr.2015.07.017
Bea, 2020, The Archean to Late-Paleozoic architecture of the Oulad Dlim Massif, the main Gondwanan indenter during the collision with Laurentia, Earth Sci. Rev., 208, 10.1016/j.earscirev.2020.103273
Bell, 1989
Benaouda, 2020, Thorium-poor monazite and columbite-(Fe) mineralization in the Gleibat Lafhouda carbonatite and its associated iron-oxide-apatite deposit of the Ouled Dlim Massif, South Morocco, Gondwana Res., 7, 19, 10.1016/j.gr.2019.06.011
Benaouda, 2020, Discovery of high-grade REE-Nb-Fe mineralization associated with calciocarbonatite in south Morocco, Ore Geol. Rev., 124, 10.1016/j.oregeorev.2020.103631
Bouabdellah, M., Chakhmouradian, A., Mouttaqi, A., Cuney, M., Ait Kassi, A., 2012. Potentiel en métaux stratégiques (REE, Nb, Zr, Ta, U, Th) des carbonatites à travers des exemples de gisements du Maroc et d’ailleurs. In Rabeau et al., eds., Programme et résumés. Ressources minérales et nouvelle économie: innovation et découvertes. Colloque international dans le cadre du 80ème Congrès de l’ACFAS: Quatrièmes journées De Launay. Ministère des Ressources naturelles et de la Faune, Québec; GM 66219, 8-9 mai 2012, p. 17.
Bouabdellah, 2010, Petrogenesis of the Eocene Tamazert Continental Carbonatites (Central High Atlas, Morocco): Implications for a Common Source for the Tamazert and Canary and Cape Verde Island Carbonatites, J. Petrol., 51, 1655, 10.1093/petrology/egq033
Bouabdellah, M., 2013. Les carbonatites et les métaux stratégiques (REE, Li, Nb, Zr, Ta, U, Th) : enjeux et perspectives de recherches à travers des exemples de gisements du Maroc et d’ailleurs. 8ème édition du Colloque International Magmatisme, Métamorphisme et Minéralisations Associées (3MA), 8 au 12 mai 2013, Marrakech – Maroc. pp. 9.
Boukirou, 2022, Petrogenesis of the late Paleoproterozoic Gleibat Lafhouda dolomite carbonatite (West African Craton Margin, Moroccan Sahara) and its relevance to the onset of fragmentation of the Columbia supercontinent, Chem. Geol., 594, 10.1016/j.chemgeo.2022.120764
Broom-Fendley, 2017, Deducing the source and composition of rare earth mineralising fluids in carbonatites: insights from isotopic (C, O, 87Sr/86Sr) data from Kangankunde, Malawi. Contri. Miner. Petrol, 172, 96, 10.1007/s00410-017-1412-7
Cangelosi, 2020, Light rare earth element redistribution during hydrothermal alteration at the Okorusu carbonatite complex, Namibia. Miner. Mag, 84, 49, 10.1180/mgm.2019.54
Caro, 2004, The hypabyssal 5034 kimberlite of the Gahcho Kue cluster, southeastern Slave craton, northwest territories, Canada: A granite-contaminated group-I kimberlite, Can. Miner., 42, 183, 10.2113/gscanmin.42.1.183
Cawthorn, R.G., Barnes, S.J., Ballhaus, C., Malitch, K.N., 2005. Platinum group element, chromium, and vanadium deposits in mafic and ultramafic rocks. In Hedenquist, J.W., Thompson, J.F.H., Goldfarb, R.J., Richards, J.P., editors, One Hundredth Anniversary Volume. Society of Economic Geology. doi.org/10.5382/AV100.
Chakhmouradian, 2021, Primary inclusions of burbankite in carbonatites from the Fen complex, southern Norway, Miner. Petrol, 115, 161, 10.1007/s00710-021-00736-0
Chakhmouradian, 2003, Titanite in carbonatitic rocks: Genetic dualism and geochemical significance, Per. Mineral 72, Special Issue, Eurocarb, 107
Chakhmouradian, 2008, Postorogenic carbonatites at Eden Lake, Trans-Hudson orogen (northern Manitoba, Canada): Geological setting, mineralogy and geochemistry, Lithos, 103, 503, 10.1016/j.lithos.2007.11.004
Chakhmouradian, 2017, Apatite in carbonatitic rocks: Compositional variation, zoning, element partitioning and petrogenetic significance, Lithos, 274–275, 188, 10.1016/j.lithos.2016.12.037
Chakhouradian, 2012, Rare Earth Elements: Rare earth mineralization in igneous rocks: Sources and processes, Elements, 8, 347, 10.2113/gselements.8.5.347
Chen, 2019, In situ major and trace element analysis of magnetite from carbonatiterelated complexes: Implications for petrogenesis and ore genesis, Ore Geol. Rev., 107, 30, 10.1016/j.oregeorev.2019.01.029
Chmyz, 2022, Olivines as probes into assimilation of silicate rocks by carbonatite magmas: Unraveling the genesis of reaction rocks from the Jacupiranga alkaline–carbonatite complex, southern Brazil, Lithos, 416–417
Dare, 2012, Variation in trace element content of magnetite crystallized from a fractionating sulfide liquid, Sudbury, Canada: Implications for provenance discrimination, Geochim. Cosmochim. Acta, 88, 27, 10.1016/j.gca.2012.04.032
Dare, 2014, Trace elements in magnetite as petrogenetic indicators, Miner. Depos, 49, 785, 10.1007/s00126-014-0529-0
Dupuis, 2011, Discriminant diagrams for iron oxide trace element fingerprinting of mineral deposit types, Miner. Depos, 46, 319, 10.1007/s00126-011-0334-y
Elliott, 2018, Fenites associated with carbonatite complexes: A review, Ore Geol. Rev., 93, 38, 10.1016/j.oregeorev.2017.12.003
Foster, 1960, 49
Gärtner, 2013, An exotic terrane of Laurussian affinity in the Mauritanides and Souttoufides (Moroccan Sahara), Gondwana Res., 24, 687, 10.1016/j.gr.2012.12.019
Gärtner, 2016, History of the West African Neoproterozoic Ocean: Key to the geotectonic history of circum-Atlantic Peri-Gondwana (Adrar Souttouf Massif, Moroccan Sahara), Gondwana Res., 29, 220, 10.1016/j.gr.2014.11.011
Giebel, 2019, A model for the formation of carbonatite-phoscorite assemblages based on the compositional variations of mica and apatite from the Palabora Carbonatite Complex, South Africa, Lithos, 324–325, 89, 10.1016/j.lithos.2018.10.030
Goldoff, B., Webster, J.D., Harlov, D.E., 2012. Characterization of fluor-chlorapatites by electron probe microanalysis with a focus on time-dependent intensity variation of halogens. Amer. Mineral 97, 1103–1115.
Gonzàlvez-Alvarez, 2021, Introduction to the special Issue, insights on carbonatite and their mineral exploration approach: A challenge towards resourcing critical metals, Ore Geol. Rev., 133
Goodenough, 2018, The rare earth elements: Demand, global resources, and challenges for resourcing future generations, Nat. Resour. Res., 27, 201, 10.1007/s11053-017-9336-5
Gregory, 2019, Distinguishing ore deposit type and barren sedimentary pyrite using laser ablation-inductively coupled plasma-mass spectrometry trace element data and statistical analysis of large data sets, Econ. Geol., 114, 771, 10.5382/econgeo.4654
Groves, 2010, Iron Oxide Copper-Gold (IOCG) deposits through Earth history: Implications for origin, lithospheric setting, and distinction from other epigenetic iron oxide deposit, Econ. Geol., 105, 641, 10.2113/gsecongeo.105.3.641
Guzmics, 2011, Carbonatite melt inclusions in coexisting magnetite, apatite and monticellite in Kerimasi calciocarbonatite, Tanzania: melt evolution and petrogenesis, Contributions Miner. Petrol, 161, 177, 10.1007/s00410-010-0525-z
Hacker, 2005, Near-ultrahigh pressure processing of continental crust: Miocene crustal xenoliths from the Pamir, Jour. Petrol., 46, 1661, 10.1093/petrology/egi030
Haissen, 2018, Petrogenesis of Derraman Peralkaline granite (Oulad Dlim Massif, West African Craton Margin, Morocco): New constraints from zircon Hf and O isotopic compositions, Compt. Rendus Geosci, 50, 236, 10.1016/j.crte.2018.06.007
Hogarth, 2000, Primary zoning in pyrochlore group minerals from carbonatites, Miner. Mag, 64, 683, 10.1180/002646100549544
Huang, 2019, Textures and chemical compositions of magnetite from Iron Oxide Copper-Gold (IOCG) and Kiruna-type Iron Oxide-Apatite (IOA) deposits and their implications for ore genesis and magnetite classifications schemes, Econ. Geol., 114, 653
Ivanic, T.J., Nebel, O., Brett, J., Murdie, R.E., 2017. The Windimurra igneous complex: An Archean Bushveld? In: Gessner, K., Blenkinsop, T. G. and Sorjonen-Ward, P. (eds) Characterization of Ore-Forming Systems from Geological, Geochemical and Geophysical Studies. Geological Society, London, Special Publications, 453(1):SP453.1, https://doi.org/10.1144/SP453.1.
Kelley, K.D., Scott, C.T., Polyak, D.E., and Kimball, B.E., 2017. Vanadium, chap. U of Schulz, K.J., DeYoung, J.H., Jr., Seal, R.R., II, and Bradley, D.C., eds., Critical mineral resources of the United States—Economic and environmental geology and prospects for future supply: U.S. Geological Survey Professional Paper 1802, p. U1–U36, https://doi.org/ 10.3133/pp1802U.
Knipping, 2015, Giant Kiruna-type deposits form by efficient flotation of magmatic magnetite suspensions, Geology, 43, 591, 10.1130/G36650.1
Kozlov, 2020, The Petyayan-Vara carbonatite-hosted rare earth deposit (Vuoriyarvi, NW Russia): Mineralogy and geochemistry, Minerals, 10, 73, 10.3390/min10010073
Laznicka, 1997, Quantitative Relationships among Giant Deposits of Metal, Econ. Geol., 94, 455, 10.2113/gsecongeo.94.4.455
Lécorché, 1991, 187
Li., W., Chakraborty, S., Nagashima, K., Costa, F.,, 2020, Multicomponent diffusion of F, Cl and OH in apatite with application to magma ascent rates, Earth Planet. Sci. Letters, 550
Lima, 2020, Petrographic, geochemical, and isotopic evidence of crustal assimilation processes in the Indaiá-II kimberlite, Alto Paranaíba province, southeast Brazil, Can. Miner., 58, 1, 10.3749/canmin.2000031
Locock, 2008, An Excel spreadsheet to recast analyses of garnet into end-member components and a synopsis of the crystal chemistry of natural silicate garnets, Comput. Geosci., 34, 1769, 10.1016/j.cageo.2007.12.013
Mackay, 2015, Pyrochlore and columbite-tantalite as indicator minerals for specialty metal deposits. Geochemistry: Exploration, Environment, Analysis, 15, 167
Matton, 2009, The Cretaceous Peri-Atlantic Alkaline Pulse (PAAP): Deep mantle plume origin or shallow lithospheric break-up, Tectonophysics, 460, 1, 10.1016/j.tecto.2009.01.001
Matton, 2014, The ‘‘eye of Africa’’ (Richat dome, Mauritania): An isolated Cretaceous alkaline–hydrothermal complex, J. Afr. Earth Sc., 97, 109, 10.1016/j.jafrearsci.2014.04.006
McDonough, 1995, The composition of the earth, Chem. Geol., 120, 2523, 10.1016/0009-2541(94)00140-4
Meinert, 2005, World skarn deposits, Econ. Geol 100th Anniversary, 299–336
Michard, 2010, The South-Western Branch of the Variscan Belt: evidence from Morocco, Tectonophysics, 492, 1, 10.1016/j.tecto.2010.05.021
Molina, 2018, High-P amphibolite-facies metamorphism in the Adrar-Souttouf Metamafic Complex, Oulad Dlim Massif (West African Craton margin, Morocco), Compt. Rendus Geosci, 350, 245, 10.1016/j.crte.2018.05.005
Montero, 2014, Timing of Archean crust formation and cratonization in the Awsard-Tichla zone of the NW Reguibat Rise, West African Craton. A SHRIMP, Nd-Sr isotopes, and geochemical reconnaissance study, Precambr. Res., 242, 112, 10.1016/j.precamres.2013.12.013
Montero, 2016, Contrasting SHRIMP U-Pb zircon ages of two carbonatite complexes from the peri-cratonic terranes pf the Reguibat Shield: Implications for the lateral extension of the West African Craton, Gondwana Res., 38, 238, 10.1016/j.gr.2015.12.005
Moore, 2015, Evolution of rare-earth mineralization in the Bear Lodge carbonatite, Wyoming: Mineralogical and isotopic evidence, Ore Geol. Rev., 64, 499, 10.1016/j.oregeorev.2014.03.015
Nachit, 2005, Discrimination between primary magmatic biotites, reequilibrated biotites and neoformed biotites, C.R. Geosci., 337, 1415, 10.1016/j.crte.2005.09.002
Nadoll, 2014, The chemistry of hydrothermal magnetite: a review, Ore Geol. Rev., 61, 1, 10.1016/j.oregeorev.2013.12.013
Pandur, 2015, Graphic-textured inclusions in apatite: Evidence for pegmatitic growth in a REE-enriched carbonatitic system, Geology, 43, 547, 10.1130/G36613.1
Pandur, 2016, Petrographic and mineral chemical characteristics of the Hoidas Lake deposit, northern Saskatchewan, Canada: constraints on the origin of adistal magmatic-hydrothermal REE system, Econ. Geol., 111, 667, 10.2113/econgeo.111.3.667
Paton, 2011, Iolite: Freeware for the visualisation and processing of mass spectrometric data, J. Anal. Atom. Spectrometry, 26, 2508, 10.1039/c1ja10172b
Pdah, 2022, Orbicular and Nodular Structures in Carbonatite of the Sung Valley Ultramafic-Alkaline-Carbonatite Complex, Shillong Plateau, Meghalaya, NE India: Their Petrogenetic Implications, Jour. Geol. Soc. India, 98, 635, 10.1007/s12594-022-2038-6
Popov, 2004, Ultramafic rocks, gabbroids, and titanomagnetic ore at Kachkanar, the Central Urals: An integrated petrological model, Geochem. Int., 42, 11
Pyle, 1991, Short-lived decay series disequilibria in the natrocarbonatite lavas of Oldoinyo Lengai, Tanzania: constraints on the timing of magma genesis, Earth Planet. Sci. Lett., 105, 378, 10.1016/0012-821X(91)90179-L
Reguir, 2009, Major- and trace-element compositional variation of phlogopite from kimberlites and carbonatites as a petrogenetic indicator, Lithos, 112, 372, 10.1016/j.lithos.2009.05.023
Rjimati, 2002, Mémoire explicatif de la carte géologique du Maroc, feuille d'Awsard
Rudnick, R.L., Gao, S., 2003. Composition of the continental crust. In: The Crust, vol. 3 (ed. R. L. Rudnick). Elsevier, pp. 1-64.
Simandl, 2018, Carbonatites: related ore deposits, resources, footprint, and exploration methods, Appl. Earth Sci., 127, 1
Sougy, 1962, West African Fold Belt, Geol. Soc. Am. Bull., 73, 871, 10.1130/0016-7606(1962)73[871:WAFB]2.0.CO;2
Sougy, J., Bronner, G., 1969. Nappes hercyniennes au Sahara espagnol méridional (tronçon nord des Mauritanides). In: Coll. Géol. africaine. Clermont-Ferrand, 9–12 avril. Ann. Fac. Sc. Univ. Clermont 41, 75–76 Géol. et Miner. Fasc.19.
Stock, 2015, New constraints on electron-beam induced halogen migration in apatite, Am. Mineral., 100, 281, 10.2138/am-2015-4949
Stoppa, 2021, 520
Stormer, J.C., Pierson, M.L., Tacker, R.C., 1993. Variation of F-X-ray and Cl-X-ray intensity due to anisotropic diffusion in apatite during electron-microprobe analysis. Amer. Mineral 78, 641–648.
Taner, 1998, Vanadium-bearing magnetite from the Matagami and Chibougamau mining districts, Abitibi, Québec, Canada, Exploration Mining Geology, 7, 299
Teiber, 2015, Compositional variation in apatite from various host rocks: clues with regards to source composition and crystallization conditions, Neues Jahrb. Mineral. Abh., 192, 151
Verplanck, P.L., Mariano, A.N., Mariano, A.Jr., in Rare Earth and Critical Elements in Ore Deposits, Verplanck, P.L., and Hitzman, M.W. Eds. (Society of Economic Geologists, Littleton, Colorado, USA, 2016), chap. 1, pp. 5–32.
Villeneuve, 2006, Evénements panafricains dans l’Adrar Souttouf (Sahara marocain), Compt. Rendus Geosci, 338, 359, 10.1016/j.crte.2006.02.008
Villeneuve, 2015, The southern and central parts of the “Souttoufide” belt, Northwest Africa. J. Afr. Earth Sci, 112, 451, 10.1016/j.jafrearsci.2015.04.016
Wall, 2014, Rare earth elements, 312
Walter, 2018, Pyrochlore as a monitor for magmatic and hydrothermal processes in carbonatites from the Kaiserstuhl volcanic complex (SW Germany), Chem. Geol., 498, 1, 10.1016/j.chemgeo.2018.08.008
Walter, B.F., Giebel, R.J, Marlow, A.G., Siegfried, P.R., Marks, M., Markl, G., Palmer, M. Kolb, J. 2022. The Kieshöhe carbonatites of southwestern Namibia – the post-magmatic role of silicate xenoliths on REE mobilisation. Communications of the Geological Survey of Namibia, 25, 1-31.
Wang, 2020, Carbonatite-related REE deposits: An overview, Minerals, 10, 965, 10.3390/min10110965
Wei, 2020, Carbon–strontium isotope decoupling in carbonatites from Caotan (Qinling, China): implications for the origin of calcite carbonatite in orogenic settings, Jour Petrol, 61, egaa024, 10.1093/petrology/egaa024
Weidendorfer, 2017, A common origin of carbonatite magmas, Geology, 45, 507, 10.1130/G38801.1
Weng, 2015, A detailed assessment of global rare earth element resources: Opportunities and challenges, Econ. Geol., 110, 1925, 10.2113/econgeo.110.8.1925
Woolley, 2005, Extrusive carbonatites: a brief review, Lithos, 85, 1, 10.1016/j.lithos.2005.03.018
Wu, 2021, Hydrothermal alteration of pyrochlore group minerals from the Miaoya carbonatite complex, central China and its implications for Nb mineralization, Ore Geol. Rev., 132, 10.1016/j.oregeorev.2021.104059
Yaxley, 2022, Carbonatites – Classification, Sources, Evolution and Emplacement, Annu. Rev. Earth Planet. Sci., 50, 10.1146/annurev-earth-032320-104243
Zaitsev, 2002, Burbankite group minerals and their alteration in rare earth carbonatites: source of elements and fluids: Evidence from C-O and Sr–Nd isotopic data, Lithos, 62, 15, 10.1016/S0024-4937(02)00084-1
Zaitsev, 1998, REE-Sr-Ba minerals from the Khibina carbonatites, Kola Peninsula, Russia: their mineralogy, paragenesis and evolution, Miner. Mag., 62, 225, 10.1180/002646198547594
Zharikov, V.A., Pertsev, N.N., Rusinov, V.L., Callegari, E., Fettes, D.J., 2007. Metasomatism and metasomatic rocks. Recommendations by the IUGS Sub-commission of the systematics of metamorphic rocks. [available at https://www.bgs.ac.uk/scmr/products.html].
Zhou, 2005, Geochemistry, petrogenesis and metallogenesis of the Panzhihua gabbroic layered intrusion and associated Fe-Ti-V oxide deposits, Sichuan Province, SW China. Jour. Petrology, 46, 2256
