Zircon: The Metamorphic Mineral
Tóm tắt
Từ khóa
Tài liệu tham khảo
Austrheim, 2009, Formation of planar deformation features (PDFs) in zircon during coseismic faulting and an evaluation of potential effects on U–Pb systematics, Chem Geol, 261, 24, 10.1016/j.chemgeo.2008.09.012
Ayers, 2012, Zircon solubility in alkaline aqueous fluids at upper crustal conditions, Geochim Cosmochim Acta, 96, 18, 10.1016/j.gca.2012.08.027
Baldwin, 2004, Pliocene eclogite exhumation at plate tectonic rates in eastern Papua New Guinea, Nature, 431, 263, 10.1038/nature02846
Baldwin, 2007, First application of titanium-in-zircon thermometry to ultrahigh-temperature metamorphism, Geology, 35, 295, 10.1130/G23285A.1
Bauer, 2007, A zircon study from the Rhodope Metamorphic Complex, N-Greece: Time record of a multistage evolution, Lithos, 99, 207, 10.1016/j.lithos.2007.05.003
Belousova, 2002, Igneous zircon: trace element composition as an indicator of source rock type, Contrib Mineral Petrol, 143, 602, 10.1007/s00410-002-0364-7
Bingen, 2001, Ilmenite as a source of zirconium during high-grade metamorphism? Textural evidence from the Caledonides of Western Norway and implications for zircon geochronology, J Petrol, 42, 355, 10.1093/petrology/42.2.355
Bingen, 2004, Trace element signature and U–Pb geochronology of eclogite-facies zircon, Bergen Arcs, Caledonides of W Norway, Contrib Mineral Petrol, 147, 671, 10.1007/s00410-004-0585-z
Bowman, 2011, Zircon U–Pb isotope, δ18O and trace element response to 80 m.y. of high temperature metamorphism in the lower crust: Sluggish diffusion and new records of Archean craton formation, Am J Sci, 311, 719, 10.2475/09.2011.01
Buick, 2006, A SHRIMP U–Pb and LA-ICP-MS trace element study of the petrogenesis of garnet–cordierite–orthoamphibole gneisses from the Central Zone of the Limpopo Belt, South Africa, Lithos, 88, 150, 10.1016/j.lithos.2005.09.001
Burnham, 2012, An experimental study of trace element partitioning between zircon and melt as a function of oxygen fugacity, Geochim Cosmochim Acta, 95, 196, 10.1016/j.gca.2012.07.034
Cesare, 2003, Residence time of S-type anatectic magmas beneath the Neogene Volcanic Province of SE Spain: a zircon and monazite SHRIMP study, Contrib Mineral Petrol, 146, 28, 10.1007/s00410-003-0490-x
Chen, 2011, Metamorphic growth and recrystallization of zircons in extremely 18O-depleted rocks during eclogite-facies metamorphism: Evidence from U–Pb ages, trace elements, and O–Hf isotopes, Geochim Cosmochim Acta, 75, 4877, 10.1016/j.gca.2011.06.003
Cherniak, 2010, Diffusion in accessory minerals: Zircon, titanite, apatite, monazite and xenotime, Rev Mineral Geochem, 72, 827, 10.2138/rmg.2010.72.18
Claesson, 2016, Can oxygen isotopes in magmatic zircon be modified by metamorphism? A case study from the Eoarchean Dniester-Bug Series, Ukrainian Shield, Precambr Res, 273, 1, 10.1016/j.precamres.2015.11.002
Claoué-Long, 1991, Zircon response to diamond-pressure metamorphism in the Kokchetav massif, USSR, Geology, 19, 710, 10.1130/0091-7613(1991)019<0710:ZRTDPM>2.3.CO;2
Degeling, 2001, Zr budget for metamorphic reactions, and the formation of zircon from garnet breakdown, Mineral Mag, 65, 749, 10.1180/0026461016560006
Drüppel, 2013, Sveconorwegian mid-crustal ultrahigh-temperature metamorphism in Rogaland, Norway: U–Pb LA-ICP-MS geochronology and pseudosections of sapphirine granulites and associated paragneisses, J Petrol, 54, 305, 10.1093/petrology/egs070
Ewing, 2013, The robustness of the Zr-in-rutile and Ti-in-zircon thermometers during high-temperature metamorphism (Ivrea-Verbano Zone, northern Italy), Contrib Mineral Petrol, 165, 757, 10.1007/s00410-012-0834-5
Ferriss, 2008, Computational study of the effect of pressure on the Ti-in-zircon geothermometer, Eur J Mineral, 20, 745, 10.1127/0935-1221/2008/0020-1860
Ferry, 2007, New thermodynamic models and revised calibrations for the Ti-in-zircon and Zr-in-rutile thermometers, Contrib Mineral Petrol, 154, 429, 10.1007/s00410-007-0201-0
Fornelli, 2014, The role of trace element partitioning between garnet, zircon and orthopyroxene on the interpretation of zircon U–Pb ages: An example from high-grade basement in Calabria (Southern Italy), Int J Earth Sci, 103, 487, 10.1007/s00531-013-0971-8
Franz, 2015, Xenotime-(Y) formation from zircon dissolution–precipitation and HREE fractionation: an example from a metamorphosed phosphatic sandstone, Espinhaço fold belt (Brazil), Contrib Mineral Petrol, 170, 10.1007/s00410-015-1191-y
Fraser, 1997, Zirconium abundance in granulite-facies minerals, with implications for zircon geochronology in high-grade rocks, Geology, 25, 607, 10.1130/0091-7613(1997)025<0607:ZAIGFM>2.3.CO;2
Fu, 2008, Ti-in-zircon thermometry: applications and limitations, Contrib Mineral Petrol, 156, 197, 10.1007/s00410-008-0281-5
Fu, 2010, Multiple origins of zircons in jadeitite, Contrib Mineral Petrol, 159, 769, 10.1007/s00410-009-0453-y
Fu, 2012, O–Hf isotope constraints on the origin of zircon in high-pressure mélange blocks and associated matrix rocks from Tinos and Syros, Greece, Eur J Mineral, 24, 277, 10.1127/0935-1221/2011/0023-2131
Ganade de Araujo, 2014, Ediacaran 2,500-km-long synchronous deep continental subduction in the West Gondwana Orogen, Nature Commun, 5, 5198, 10.1038/ncomms6198
Gao, 2015, Zircon geochemistry records the action of metamorphic fluid on the formation of ultrahigh-pressure jadeite quartzite in the Dabie orogen, Chem Geol, 419, 158, 10.1016/j.chemgeo.2015.10.043
Gasser, 2012, Large-scale, short-lived metamorphism, deformation, and magmatism in the Chugach metamorphic complex, southern Alaska: A SHRIMP U–Pb study of zircons, Geol Soc Am Bull, 124, 886, 10.1130/B30507.1
Gauthiez-Putallaz, 2016, Dating prograde fluid pulses during subduction by in situ U–Pb and oxygen isotope analysis, Contrib Mineral Petrol, 171, 15, 10.1007/s00410-015-1226-4
Gebauer, 1997, 35 Ma old ultrahigh-pressure metamorphism and evidence for very rapid exhumation in the Dora Maira Massif, Western Alps, Lithos, 41, 5, 10.1016/S0024-4937(97)82002-6
Geisler, 2001, Kinetics of thermal recovery and recrystallization of partially metamict zircon: a Raman spectroscopic study, Eur J Mineral, 13, 1163, 10.1127/0935-1221/2001/0013-1163
Geisler, 2001, Leaching and differential recrystallization of metamict zircon under experimental hydrothermal conditions, Contrib Mineral Petrol, 141, 53, 10.1007/s004100000202
Geisler, 2003, Experimental hydrothermal alteration of partially metamict zircon, Am Mineral, 88, 1496, 10.2138/am-2003-1013
Geisler, 2003, Low-temperature hydrothermal alteration of natural metamict zircons from the Eastern Desert, Egypt, Mineral Mag, 67, 485, 10.1180/0026461036730112
Geisler, 2007, Re-equilibration of zircon in acqueous fluids and melts, Elements, 3, 43, 10.2113/gselements.3.1.43
Gerdes, 2009, Zircon formation versus zircon alteration—New insights from combined U–Pb and Lu–Hf in-situ LA-ICP-MS analyses, and consequences for the interpretation of Archean zircon from the Central Zone of the Limpopo Belt, Chem Geol, 261, 230, 10.1016/j.chemgeo.2008.03.005
Gilotti, 2004, Devonian to Carboniferous collision in the Greenland Caledonides: U–Pb zircon and Sm–Nd ages of high-pressure and ultrahigh-pressure metamorphism, Contrib Mineral Petrol, 148, 216, 10.1007/s00410-004-0600-4
Gordon, 2012, Multistage exhumation of young UHP–HP rocks: Timescales of melt crystallization in the D’Entrecasteaux Islands, southeastern Papua New Guinea, Earth Planet Sci Lett, 351–352, 237, 10.1016/j.epsl.2012.07.014
Gordon, 2013, U–Pb dates and trace-element geochemistry of zircon from migmatite, Western Gneiss Region, Norway: Significance for history of partial melting in continental subduction, Lithos, 170–171, 35, 10.1016/j.lithos.2013.02.003
Gregory, 1981, An oxygen isotope profile in a section of Cretaceous oceanic crust, Samail Ophiolite, Oman: Evidence for δ18O buffering of the oceans by deep (>5 km) seawater-hydrothermal circulation at mid-ocean ridges, J Geophys Res, 86, 2737, 10.1029/JB086iB04p02737
Grimes, 2015, “Fingerprinting” tectono-magmatic provenance using trace elements in igneous zircon”, Contrib Mineral Petrol, 170, 1, 10.1007/s00410-015-1199-3
Hacker, 1998, U/Pb zircon ages constrain the architecture of the ultrahigh-pressure Qinling–Dabie Orogen, Earth Planet Sci Lett, 161, 215, 10.1016/S0012-821X(98)00152-6
Hanchar, 1993, Zircon zonation patterns as revealed by cathodoluminescence and backscattered electron images: Implications for interpretation of complex crustal histories, Chem Geol, 110, 1, 10.1016/0009-2541(93)90244-D
Hanchar, 1995, Revealing hidden structures: The application of cathodoluminescence and back-scattered electron imaging to dating zircons from lower crust xenoliths, Lithos, 36, 289, 10.1016/0024-4937(95)00022-4
Harley, 2014, Accessory mineral behaviour in granulite migmatites: a case study from the Kerala Khondalite Belt, India, J Petrol, 55, 1965, 10.1093/petrology/egu047
Harley, 2007, Zircon behaviour and the thermal histories of mountain chains, Elements, 3, 25, 10.2113/gselements.3.1.25
Harlov, 2011, Fluid-mediated partial alteration in monazite: the role of coupled dissolution–reprecipitation in element redistribution and mass transfer, Contrib Mineral Petrol, 162, 329, 10.1007/s00410-010-0599-7
Harrison, 2007, High sensitivity mapping of Ti distributions in Hadean zircons, Earth Planet Sci Lett, 261, 9, 10.1016/j.epsl.2007.05.016
Hay, 2009, Zircon alteration, formation and preservation in sandstones, Sedimentology, 56, 2175, 10.1111/j.1365-3091.2009.01075.x
Hay, 2009, Zircon behaviour during low-temperature metamorphism, J Petrol, 50, 571, 10.1093/petrology/egp011
Hay, 2010, Anatomy of a low temperature zircon outgrowth, Contrib Mineral Petrol, 159, 81, 10.1007/s00410-009-0417-2
Hermann, 2003, Relating zircon and monazite domains to garnet growth zones: age and duration of granulite facies metamorphism in the Val Malenco lower crust, J Metamorph Geol, 21, 833, 10.1046/j.1525-1314.2003.00484.x
Hermann, 2014, Subduction of continental crust to mantle depth: Geochemistry of ultrahigh-pressure rocks, The Crust, 309
Hermann, 2001, Multiple zircon growth during fast exhumation of diamondiferous, deeply subducted continental crust (Kokchetav massif, Kazakhstan), Contrib Mineral Petrol, 141, 66, 10.1007/s004100000218
Hermann, 2006, The age of metamorphism of diamondiferous rocks determined with SHRIMP dating of zircon, Russ Geol Geophys, 47, 513
Hermann, 2006, Sub-solidus Oligocene zircon formation in garnet peridotite during fast decompression and fluid infiltration (Duria, Central Alps), Mineral Petrol, 88, 181, 10.1007/s00710-006-0155-3
Hermann, 2006, Aqueous fluids and hydrous melts in high-pressure and ultra-high pressure rocks: Implications for element transfer in subduction zones, Lithos, 92, 399, 10.1016/j.lithos.2006.03.055
Hetherington, 2010, Experimental metasomatism of monazite and xenotime: Mineral stability, REE mobility and fluid composition, Mineral Petrol, 99, 165, 10.1007/s00710-010-0110-1
Hiess, 2008, Ti-in-zircon thermometry applied to contrasting Archean metamorphic and igneous systems, Chem Geol, 247, 323, 10.1016/j.chemgeo.2007.10.012
Hofmann, 2009, Sub-micron scale distributions of trace elements in zircon, Contrib Mineral Petrol, 158, 317, 10.1007/s00410-009-0385-6
Hokada, 2004, Zircon growth in UHT leucosome: constraints from zircon–garnet rare earth elements (REE) relations in Napier Complex, East Antarctica, J Mineral Petrol Sci, 99, 180, 10.2465/jmps.99.180
Hopkins, 2008, Low heat flow inferred from > 4 Gyr zircons suggests Hadean plate boundary interactions, Nature, 456, 493, 10.1038/nature07465
Hoskin, 2000, Metamorphic zircon formation by solid-state recrystallization of protolith igneous zircon, J Metamorph Geol, 18, 423, 10.1046/j.1525-1314.2000.00266.x
Kaczmarek, 2008, Trace element chemistry and U–Pb dating of zircons from oceanic gabbros and their relationship with whole rock composition (Lanzo, Italian Alps), Contrib Mineral Petrol, 155, 295, 10.1007/s00410-007-0243-3
Katayama, 2009, Inclusion study in zircon from ultrahigh-pressure metamorphic rocks in the Kokchetav massif: an excellent tracer of metamorphic history, J Geol Soc, 166, 783, 10.1144/0016-76492008-019
Katayama, 2001, Ion micro-probe U–Pb zircon geochronology of peak and retrograde stages of ultrahigh-pressure metamorphic rocks from the Kokchetav massif, northern Kazakhstan, Earth Planet Sci Lett, 188, 185, 10.1016/S0012-821X(01)00319-3
Kelly, 2005, An integrated microtextural and chemical approach to zircon geochronology: refining the Archean history of the Napier Complex, east Antarctica, Contrib Mineral Petrol, 149, 57, 10.1007/s00410-004-0635-6
Kelsey, 2011, Progress in linking accessory mineral growth and breakdown to major mineral evolution in metamorphic rocks: a thermodynamic approach in the Na2O–CaO–K2O–FeO–MgO–Al2O3–SiO2–H2O–TiO2–ZrO2 system, J Metamorph Geol, 29, 151, 10.1111/j.1525-1314.2010.00910.x
Kelsey, 2008, Thermobarometric modelling of zircon and monazite growth in melt-bearing systems: examples using model metapelitic and metapsammitic granulites, J Metamorph Geol, 26, 199, 10.1111/j.1525-1314.2007.00757.x
Kohn, 2016, Metamorphic chronology—a tool for all ages: Past achievements and future prospects, Am Mineral, 101, 25, 10.2138/am-2016-5146
Kohn, 2017, Diffusion: Obstacles and opportunities in petrochronology, Rev Mineral Geochem, 83, 103, 10.2138/rmg.2017.83.4
Korhonen, 2013, How long-lived is ultrahigh temperature (UHT) metamorphism? Constraints from zircon and monazite geochronology in the Eastern Ghats orogenic belt, India, Precambr Res, 234, 322, 10.1016/j.precamres.2012.12.001
Kotkova, 2010, Anatexis during high-pressure crustal metamorphism: evidence from garnet–whole-rock REE relationships and zircon–rutile Ti–Zr thermometry in leucogranulites from the Bohemian Massif, J Petrol, 51, 1967, 10.1093/petrology/egq045
Kusiak, 2013, Changes in zircon chemistry during archean UHT metamorphism in the Napier Complex, Antarctica, Am J Sci, 313, 933, 10.2475/09.2013.05
Kusiak, 2013, Mobilization of radiogenic Pb in zircon revealed by ion imaging: Implications for early Earth geochronology, Geology, 41, 291, 10.1130/G33920.1
Kusiak, 2015, Metallic lead nanospheres discovered in ancient zircons, PNAS, 112, 4958, 10.1073/pnas.1415264112
Kylander-Clark, 2017, Petrochronology by laser–ablation inductively coupled plasma mass spectrometry, Rev Mineral Geochem, 83, 183, 10.2138/rmg.2017.83.6
Kylander-Clark, 2013, Laser-ablation split-stream ICP petrochronology, Chem Geol, 345, 99, 10.1016/j.chemgeo.2013.02.019
Lenting, 2010, The behavior of the Hf isotope system in radiation-damaged zircon during experimental hydrothermal alteration, Am Mineral, 95, 1343, 10.2138/am.2010.3521
López Sánchez-Vizcaíno, 2001, Middle Miocene HP metamorphism and fast exhumation of the Nevado Filabride Complex, SE Spain, Terra Nova, 13, 327, 10.1046/j.1365-3121.2001.00354.x
Martin, 2006, The isotopic composition of zircon and garnet: a record of the metamorphic history of Naxos (Greece), Lithos, 87, 174, 10.1016/j.lithos.2005.06.016
Martin, 2008, Mobility of trace elements and oxygen in zircon during metamorphism: Consequences for geochemical tracing, Earth Planet Sci Lett, 267, 161, 10.1016/j.epsl.2007.11.029
Martin, 2014, Garnet oxygen analysis by SHRIMP-SI: matrix corrections and application to high pressure metasomatic rocks from Alpine Corsica, Chem Geol, 374–375, 25, 10.1016/j.chemgeo.2014.02.010
McLaren, 1994, The microstructure of zircon and its influence on the age determiantion from Pb/U isotopic ratios measured by ion microprobe, Geochim Cosmochim Acta, 58, 993, 10.1016/0016-7037(94)90521-5
Meldrum, 1999, Effects of dose rate and temperature on the crystalline-to-metamict transformation in the ABO4 orthosilicates, Can Mineral, 37, 207
Menneken, 2007, Hadean diamonds in zircon from Jack Hills, Western Australia, Nature, 448, 917, 10.1038/nature06083
Miller, 2001, An O-isotope profile through the HP–LT Corsican ophiolite, France and its implications for fluid flow during subduction, Chem Geol, 178, 43, 10.1016/S0009-2541(00)00428-9
Möller, 2002, Polyphase zircon in ultrahigh-temperature granulites (Rogaland, SW Norway): Constraints for Pb diffusion in zircon, J Metamorph Geol, 20, 727, 10.1046/j.1525-1314.2002.00400.x
Möller, 2003, Linking growth episodes of zircon and metamorphic textures to zircon chemistry: an example from the ultrahigh-temperature granulites of Rogaland (SW Norway), Geol Soc, London, Spec Publ, 220, 65, 10.1144/GSL.SP.2003.220.01.04
Montero, 2004, 55 million years of continuous anatexis in Central Iberia: Single-zircon dating of the Peña Negra Complex, J Geol Soc, 161, 255, 10.1144/0016-764903-024
Mori, 2011, Origin of zircon in jadeitite from the Nishisonogi metamorphic rocks, Kyushu, Japan, J Metamorph Geol, 29, 673, 10.1111/j.1525-1314.2011.00935.x
Nasdala, 2005, Comment on: Application of Raman spectroscopy to distinguish metamorphic and igneous zircon (Xian et al., Anal Lett 2004, v. 37, p. 119), Anal Lett, 38, 727, 10.1081/AL-200050353
Nasdala, 2002, Annealing radiation damage and the recovery of cathodoluminescence, Chem Geol, 191, 121, 10.1016/S0009-2541(02)00152-3
Nasdala, 2003, Spectroscopic methods applied to zircon, Rev Mineral Geochem, 53, 427, 10.2113/0530427
Page, 2014, A garnet-zircon oxygen isotope record of subduction and exhumation fluids from the Franciscan complex, California, J Petrol, 55, 103, 10.1093/petrology/egt062
Page, 2007, High-precision oxygen isotope analysis of picogram samples reveals 2 μm gradients and slow diffusion in zircon, Am Mineral, 92, 1772, 10.2138/am.2007.2697
Pape, 2016, A systematic evaluation of the Zr-in-rutile thermometer in ultra-high temperature (UHT) rocks, Contrib Mineral Petrol, 171, 1, 10.1007/s00410-016-1254-8
Petersson, 2015, Zircon U–Pb, Hf and O isotope constraints on growth versus reworking of continental crust in the subsurface Grenville orogen, Ohio, USA, Precambrian Res, 265, 313, 10.1016/j.precamres.2015.02.016
Phillips, 2015, High-pressure metamorphism in the southern New England Orogen: implications for long-lived accretionary orogenesis in eastern Australia, Tectonics, 34, 1979, 10.1002/2015TC003920
Piazolo, 2012, Brittle–ductile microfabrics in naturally deformed zircon: Deformation mechanisms and consequences for U–Pb dating, Am Mineral, 97, 1544, 10.2138/am.2012.3966
Poller, 2001, REE, U, TH, and HF distribution in zircon from Western Carpathian Variscan granitoids: A combined cathodoluminescence and ion microprobe study, Am J Sci, 301, 858, 10.2475/ajs.301.10.858
Putlitz, 2000, Oxygen and hydrogen isotope study of high-pressure metagabbros and metabasalts (Cyclades, Greece): implications for the subduction of oceanic crust, Contrib Mineral Petrol, 138, 114, 10.1007/s004100050012
Rasmussen, 2005, Zircon growth in very low grade metasedimentary rocks: evidence for zirconium mobility at ~250 °C, Contrib Mineral Petrol, 150, 146, 10.1007/s00410-005-0006-y
Rasmussen, 2011, Metamorphic replacement of mineral inclusions in detrital zircon from Jack Hills, Australia: Implications for the Hadean Earth, Geology, 39, 1143, 10.1130/G32554.1
Reddy, 2006, Crystal-plastic deformation of zircon: A defect in the assumption of chemical robustness, Geology, 34, 257, 10.1130/G22110.1
Reddy, 2007, Quantitative characterization of plastic deformation of zircon and geological implications, Contrib Mineral Petrol, 153, 625, 10.1007/s00410-006-0174-4
Reddy, 2008, Electron backscatter diffraction analysis of zircon: A systematic assessment of match unit characteristics and pattern indexing optimization, Am Mineral, 93, 187, 10.2138/am.2008.2658
Reddy, 2009, Deformation-related microstructures in magmatic zircon and implications for diffusion, Contrib Mineral Petrol, 157, 231, 10.1007/s00410-008-0331-z
Reddy, 2010, Electron backscatter diffraction analysis and orientation mapping of monazite, Mineral Mag, 74, 493, 10.1180/minmag.2010.074.3.493
Root, 2004, Zircon geochronology and ca. 400 Ma exhumation of Norwegian ultrahigh-pressure rocks: an ion microprobe and chemical abrasion study, Earth Planet Sci Lett, 228, 325, 10.1016/j.epsl.2004.10.019
Rubatto, 2002, Zircon trace element geochemistry: distribution coefficients and the link between U–Pb ages and metamorphism, Chem Geol, 184, 123, 10.1016/S0009-2541(01)00355-2
Rubatto, 2015, Oxygen isotope record of oceanic and high-pressure metasomatism: a P–T–time–fluid path for the Monviso eclogites (Italy), Contrib Mineral Petrol, 170, 44, 10.1007/s00410-015-1198-4
Rubatto, 2013, Timescales of crustal melting in the Higher Himalayan Crystallines (Sikkim, Eastern Himalaya) inferred from trace element-constrained monazite and zircon chronology, Contrib Mineral Petrol, 165, 349, 10.1007/s00410-012-0812-y
Rubatto, 2000, Use of cathodoluminescence for U–Pb zircon dating by ion microprobe: some examples from the Western Alps, Cathodoluminescence in geosciences, 373, 10.1007/978-3-662-04086-7_15
Rubatto, 1999, Dating of eclogite-facies zircons: the age of Alpine metamorphism in the Sesia-Lanzo Zone (Western Alps), Earth Planet Sci Lett, 167, 141, 10.1016/S0012-821X(99)00031-X
Rubatto, 2003, Zircon formation during fluid circulation in eclogites (Monviso, Western Alps): implications for Zr and Hf budget in subduction zones, Geochim Cosmochim Acta, 67, 2173, 10.1016/S0016-7037(02)01321-2
Rubatto, 2007, Experimental zircon/melt and zircon/garnet trace element partitioning and implications for the geochronology of crustal rocks, Chem Geol, 241, 62, 10.1016/j.chemgeo.2007.01.027
Rubatto, 2007, Zircon behaviour in deeply subducted rocks, Elements, 3, 31, 10.2113/gselements.3.1.31
Rubatto, 2001, Zircon and monazite response to prograde metamorphism in the Reynolds Range, central Australia, Contrib Mineral Petrol, 140, 458, 10.1007/PL00007673
Rubatto, 2006, Temperature and bulk composition control on the growth of monazite and zircon during low-pressure anatexis (Mount Stafford, central Australia), J Petrol, 47, 1973, 10.1093/petrology/egl033
Rubatto, 2008, Dissolution–reprecipitation of zircon at low-temperature, high-pressure conditions (Lanzo Massif, Italy), Am Mineral, 93, 1519, 10.2138/am.2008.2874
Rubatto, 2009, Protracted fluid-induced melting during Barrovian metamorphism in the Central Alps, Contrib Mineral Petrol, 158, 703, 10.1007/s00410-009-0406-5
Rubatto, 2011, Yo-Yo subduction recorded by accessory minerals in the Sesia Zone, Western Alps, Nature Geosci, 4, 338, 10.1038/ngeo1124
Rumble, 2002, Low δ18O zircons, U–Pb dating, and the age of the Qinglongshan oxygen and hydrogen isotope anomaly near Donghai in Jiangsu Province, China, Geochim Cosmochim Acta, 66, 2299, 10.1016/S0016-7037(02)00844-X
Schaltegger, 1999, Growth, annealing and recrystallization of zircon and preservation of monazite in high-grade metamorphism: conventional and in-situ U–Pb isotope, cathodoluminescence and microchemical evidence, Contrib Mineral Petrol, 134, 186, 10.1007/s004100050478
Schmitt, 2017, Secondary ionization mass spectrometry analysis in petrochronology, Rev Mineral Geochem, 83, 199, 10.2138/rmg.2017.83.7
Seydoux-Guillaume, 2012, Low-temperature alteration of monazite: Fluid mediated coupled dissolution–precipitation, irradiation damage, and disturbance of the U–Pb and Th–Pb chronometers, Chem Geol, 330–331, 140, 10.1016/j.chemgeo.2012.07.031
Shatsky, 2003, The Kokchetav massif, Kazakhstan, EMU Notes in Mineralogy Vol. 5: Ultrahigh Pressure Metamorphism, 75, 10.1180/EMU-notes.5.4
Sheng, 2012, Fluid action on zircon growth and recrystallization during quartz veining within UHP eclogite: Insights from U–Pb ages, O–Hf isotopes and trace elements, Lithos, 136–139, 126, 10.1016/j.lithos.2011.06.012
Spandler, 2004, Exsolution of thortveitite, yttrialite and xenotime during low temperature recrystallization of zircon from New Caledonia, and their significance for trace element incorporation in zircon, Am Mineral, 89, 1795, 10.2138/am-2004-11-1226
Spandler, 2005, Late Cretaceous–Tertiary tectonics of the southern Pacific; insight from U–Pb SHRIMP dating of eclogite-facies rocks from New Caledonia, Tectonics, 24, TC3003, 10.1029/2004TC001709
Spandler, 2011, Internal and external fluid sources for eclogite-facies veins in the Monviso meta-ophiolite, Western Alps: Implications for fluid flow in subduction zones, J Petrol, 52, 1207, 10.1093/petrology/egr025
Stepanov, 2012, Experimental study of monazite/melt partitioning with implications for the REE, Th and U geochemistry of crustal rocks, Chem Geol, 300–301, 200, 10.1016/j.chemgeo.2012.01.007
Stepanov, 2014, Geochemistry of ultrahigh-pressure anatexis: fractionation of elements in the Kokchetav gneisses during melting at diamond-facies conditions, Contrib Mineral Petrol, 167, 1002, 10.1007/s00410-014-1002-x
Stepanov, 2016, Melting history of an ultrahigh-pressure paragneiss revealed by multiphase solid inclusions in garnet, Kokchetav massif, Kazakhstan, J Petrol, 57, 1531
Stepanov, 2016, Constrasting P–T paths within the Barchi-Kol UHP terrain (Kokchetav Complex): Implications for subduction and exhumation of continental crust, Am Mineral, 101, 788, 10.2138/am-2016-5454
Tailby, 2011, Ti site occupancy in zircon, Geochim Cosmochim Acta, 75, 905, 10.1016/j.gca.2010.11.004
Taylor, 2014, Experimental determination of REE partition coefficients between zircon, garnet and melt: A key to understanding high-T crustal processes, J Metamorph Geol, 33, 231, 10.1111/jmg.12118
Tichomirowa, 2005, Resorption, growth, solid state recrystallisation, and annealing of granulite facies zircon—a case study from the Central Erzgebirge, Bohemian Massif, Lithos, 82, 25, 10.1016/j.lithos.2004.12.005
Timms, 2006, Deformation-related modification of U and Th in zircon, Geochim Cosmochim Acta, 70, A651, 10.1016/j.gca.2006.06.1213
Timms, 2011, Relationship among titanium, rare earth elements, U–Pb ages and deformation microstructures in zircon: Implications for Ti-in-zircon thermometry, Chem Geol, 280, 33, 10.1016/j.chemgeo.2010.10.005
Tomaschek, 2003, Zircons from Syros, Cyclades, Greece—recrystallization and mobilization of zircon during high-pressure metamorphism, J Petrol, 44, 1977, 10.1093/petrology/egg067
Valley, 2010, Hafnium isotopes in zircon: A tracer of fluid–rock interaction during magnetite–apatite (“Kiruna-type”) mineralization, Chem Geol, 275, 208, 10.1016/j.chemgeo.2010.05.011
Valley, 2014, Hadean age for a post-magma-ocean zircon confirmed by atom-probe tomography, Nature Geosci, 7, 219, 10.1038/ngeo2075
Vavra, 1996, Multiple zircon growth and recrystallization during polyphase Late Carboniferous to Triassic metamorphism in granulites of the Ivrea Zone (Southern Alps): an ion microprobe (SHRIMP) study, Contrib Mineral Petrol, 122, 337, 10.1007/s004100050132
Vervoort, 2016, Clarifying the zircon Hf isotope record of crust–mantle evolution, Chem Geol, 425, 65, 10.1016/j.chemgeo.2016.01.023
Vonlanthen, 2012, Recrystallization rims in zircon (Valle d’Arbedo. Switzerland): An integrated cathodoluminescence, LA-ICP-MS, SHRIMP, and TEM study, Am Mineral, 97, 369, 10.2138/am.2012.3854
Watson, 1997, Oxygen diffusion in zircon, Earth Planet Sci Lett, 148, 527, 10.1016/S0012-821X(97)00057-5
Watson, 2005, Zircon thermometer reveals minimum melting conditions on earliest Earth, Science, 308, 841, 10.1126/science.1110873
Whitehouse, 2010, On the difficulty of assigning crustal residence, magmatic protolith and metamorphic ages to Lewisian granulites: constraints from combined in situ U–Pb and Lu–Hf isotopes, 81
Whitehouse, 2003, Dating high-grade metamorphism: constraints from rare-earth elements in zircon and garnet, Contrib Mineral Petrol, 145, 61, 10.1007/s00410-002-0432-z
Whitehouse, 2014, Behaviour of radiogenic Pb in zircon during ultrahigh-temperature metamorphism: An ion imaging and ion tomography case study from the Kerala Khondalite Belt, southern India, Contrib Mineral Petrol, 168, 1, 10.1007/s00410-014-1042-2
Williams, 1984, Unsupported radiogenic Pb in zircon: a cause of anomalously high Pb–Pb, U–Pb and Th–Pb ages, Contrib Mineral Petrol, 88, 322, 10.1007/BF00376756
Williams, 2001, Response of detrital zircon and monazite, and their U–Pb isotopic systems, to regional metamorphism and host-rock partial melting, Cooma Complex, southeastern Australia, Aust J Earth Sci, 48, 557, 10.1046/j.1440-0952.2001.00883.x
Wu, 2006, U–Pb, Hf and O isotope evidence for two episodes of fluid-assisted zircon growth in marble-hosted eclogites from the Dabie orogen, Geochim Cosmochim Acta, 70, 3743, 10.1016/j.gca.2006.05.011
Wu, 2008, Timing of UHP metamorphism in the Hong’an area, western Dabie Mountains, China: Evidence from zircon U–Pb age, trace element and Hf isotope composition, Contrib Mineral Petrol, 155, 123, 10.1007/s00410-007-0231-7
Wu, 2008, Zircon U–Pb age and trace element evidence for Paleoproterozoic granulite-facies metamorphism and Archean crustal rocks in the Dabie Orogen, Lithos, 101, 308, 10.1016/j.lithos.2007.07.008
Xia, 2009, Contrasting Lu–Hf and U–Th–Pb isotope systematics between metamorphic growth and recrystallization of zircon from eclogite-facies metagranites in the Dabie orogen, China, Lithos, 112, 477, 10.1016/j.lithos.2009.04.015
Xian, 2004, Application of Raman spectroscopy to distinguish metamorphic and igneous zircons, Anal Lett, 37, 119, 10.1081/AL-120027777
Yakymchuk, 2014, Behaviour of zircon and monazite during crustal melting, J Geol Soc, 171, 465, 10.1144/jgs2013-115
Ye, 2000, Large areal extent of ultrahigh-pressure metamorphism in the Sulu ultrahigh-pressure terrane of East China: new implications from coesite and omphacite inclusions in zircon of granitic gneiss, Lithos, 52, 157, 10.1016/S0024-4937(99)00089-4
Young, 2015, Does continental crust transform during eclogite facies metamorphism?, J Metamorph Geol, 33, 331, 10.1111/jmg.12123
Zhang, 2009, Source of coesite inclusions within inherited magmatic zircon from Sulu UHP rocks, eastern China, and their bearing for fluid–rock interaction and SHRIMP dating, J Metamorph Geol, 27, 317, 10.1111/j.1525-1314.2009.00819.x
Zhang, 2009, Petrological and geochronological constraints on the formation, subduction and exhumation of the continental crust in the southern Sulu orogen, eastern-central China, Tectonophysics, 475, 291, 10.1016/j.tecto.2009.02.042
Zhao, 2008, Zircon U–Pb ages, Hf and O isotopes constrain the crustal architecture of the ultrahigh-pressure Dabie orogen in China, Chem Geol, 253, 222, 10.1016/j.chemgeo.2008.05.011
Zhao, 2015, Anatomy of zircon growth in high pressure granulites: SIMS U–Pb geochronology and Lu–Hf isotopes from the Jiaobei Terrane, eastern North China Craton, Gondwana Res, 28, 1373, 10.1016/j.gr.2014.10.009
Zheng, 2003, Stable isotope geochemistry of ultra-high pressure metamorphic rocks from the Dabie-Sulu orogen in China; implications for geodynamics and fluid regime, Earth-Sci Rev, 62, 105, 10.1016/S0012-8252(02)00133-2
Zheng, 2005, Metamorphic effect on zircon Lu–Hf and U–Pb isotope systems in ultrahigh-pressure eclogite-facies metagranite and metabasalt, Earth Planet Sci Lett, 240, 378, 10.1016/j.epsl.2005.09.025