Volume 47 Issue 4
Apr.  2022
Turn off MathJax
Article Contents
Liang Xiao, Xu Yajun, Zi Jianwei, Zhang Hangchuan, Du Yuansheng, 2022. Genetic Mineralogy of Monazite and Constraints on Interpretation of U-Th-Pb Ages. Earth Science, 47(4): 1383-1398. doi: 10.3799/dqkx.2021.157
Citation: Liang Xiao, Xu Yajun, Zi Jianwei, Zhang Hangchuan, Du Yuansheng, 2022. Genetic Mineralogy of Monazite and Constraints on Interpretation of U-Th-Pb Ages. Earth Science, 47(4): 1383-1398. doi: 10.3799/dqkx.2021.157

Genetic Mineralogy of Monazite and Constraints on Interpretation of U-Th-Pb Ages

doi: 10.3799/dqkx.2021.157
  • Received Date: 2021-05-12
    Available Online: 2022-04-29
  • Publish Date: 2022-04-25
  • Monazite U-Pb geochronology plays an important role in dating magmatism, metamorphism and sedimentation. Because of its complex genesis, characterizing different types of monazite in terms of genetic mineralogy and chemistry is of great significance to interpret geochronology data. In this paper, it summarizes the occurrence (mineral paragenesis), crystal morphology and mineral geochemistry of different monazite in origins. The results show that magmatic monazite has straight edges, angular or embayment shape, showing oscillatory zoning, sector zoning and homogeneous internal structure, generally existing as inclusions that coexisting with feldspar and quartz. Metamorphic monazite is divided into high-grade and low-grade types. High-grade metamorphic monazite has straight edges, with concentric zoning, patchy zoning and intergrowth-like zoning or unzoned, generally associated with metamorphic porphyroblast (such as garnet). Low-grade metamorphic monazite occurs as discrete crystals with numerous inclusions, commonly exhibiting skeletal texture. Hydrothermal monazite has two types: the first type occurs as a cluster of multiple small monazite grain (< 50 μm) and the other type is grains showing oscillatory zoning and sector zoning. The rare earth element pattern of monazite is commonly right-leaning. Magmatic monazite has the strongest negative Eu anomalies with high Th, U, Pb, Y and HREE contents. High-grade metamorphic monazite has moderate negative Eu anomalies with high Th, U; HREE and Y are correlated with its coexisting minerals, whereas low-grade metamorphic monazite has insignificant negative Eu with low Th and U. Hydrothermal monazite has weak negative Eu, extremely low U and high Th/U ratio.

     

  • loading
  • Aleinikoff, J.N., Schenck, W.S., Plank, M.O., et al., 2006. Deciphering Igneous and Metamorphic Events in High-Grade Rocks of the Wilmington Complex, Delaware: Morphology, Cathodoluminescence and Backscattered Electron Zoning, and SHRIMP U-Pb Geochronology of Zircon and Monazite. Geological Society of America Bulletin, 118(1/2): 39-64. https://doi.org/10.1130/b25659.1
    Alipour-Asll, M., Mirnejad, H., Milodowski, A.E., 2012. Occurrence and Paragenesis of Diagenetic Monazite in the Upper Triassic Black Shales of the Marvast Region, South Yazd, Iran. Mineralogy and Petrology, 104(3-4): 197-210. https://doi.org/10.1007/s00710-011-0186-2
    Ayers, J.C., Miller, C., Gorisch, B., et al., 1999. Textural Development of Monazite during High-Grade Metamorphism; Hydrothermal Growth Kinetics, with Implications for U, Th-Pb Geochronology. American Mineralogist, 84(11/12): 1766-1780. https://doi.org/10.2138/am-1999-11-1206
    Baldwin, J.A., Bowring, S.A., Williams, M.L., et al., 2006. Geochronological Constraints on the Evolution of High-Pressure Felsic Granulites from an Integrated Electron Microprobe and ID-TIMS Geochemical Study. Lithos, 88(1/2/3/4): 173-200. https://doi.org/10.1016/j.lithos.2005.08.009
    Barbarin, B., 1999. A Review of the Relationships between Granitoid Types, Their Origins and Their Geodynamic Environments. Lithos, 46(3): 605-626. https://doi: 10.1016/ S0024-4937(98)00085-1
    Bergemann, C.A., Gnos, E., Berger, A., et al., 2017. Th-Pb Ion Probe Dating of Zoned Hydrothermal Monazite and Its Implications for Repeated Shear Zone Activity: An Example from the Central Alps, Switzerland. Tectonics, 36(4): 671-689. https://doi.org/10.1002/2016tc004407 doi: 10.1002/2016TC004407
    Bergemann, C.A., Gnos, E., Berger, A., et al., 2018. Constraining Long-Term Fault Activity in the Brittle Domain through In Situ Dating of Hydrothermal Monazite. Terra Nova, 30(6): 440-446. https://doi.org/10.1111/ter.12360
    Bergemann, C.A., Gnos, E., Berger, A., et al., 2020. Dating Tectonic Activity in the Lepontine Dome and Rhone-Simplon Fault Regions through Hydrothermal Monazite-(Ce). Solid Earth, 11(1): 199-222. https://doi.org/10.5194/se-11-199-2020
    Bingen, B., van Breemen, O.V., 1998. U-Pb Monazite Ages in Amphibolite- to Granulite-Facies Orthogneiss Reflect Hydrous Mineral Breakdown Reactions: Sveconorwegian Province of SW Norway. Contributions to Mineralogy and Petrology, 132(4): 336-353. https://doi.org/10.1007/s004100050428
    Boehnke, P., Watson, E.B., Trail, D., et al., 2013. Zircon Saturation Re-Revisited. Chemical Geology, 351: 324-334. https://doi.org/10.1016/j.chemgeo.2013.05.028
    Buick, I.S., Clark, C., Rubatto, D., et al., 2010. Constraints on the Proterozoic Evolution of the Aravalli-Delhi Orogenic Belt (NW India) from Monazite Geochronology and Mineral Trace Element Geochemistry. Lithos, 120(3/4): 511-528. https://doi.org/10.1016/j.lithos.2010.09.011
    Buick, I.S., Hermann, J., Williams, I.S., et al., 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(1/2/3/4): 150-172. https://doi.org/10.1016/j.lithos.2005.09.001
    Carosi, R., Montomoli, C., Rubatto, D., et al., 2008. Late-Oligocene High-Temperature Shear Zones in the Core of the Higher Himalayan Crystallines (Lower Dolpo, Western Nepal). Tectonics, 29(4): TC4029. https://doi.org/10.1029/2008TC002400
    Catlos, E.J., Dubey, C.S., Sivasubramanian, P., 2008. Monazite Ages from Carbonatites and High-Grade Assemblages along the Kambam Fault (Southern Granulite Terrane, South India). American Mineralogist, 93(8-9): 1230-1244. https://doi.org/10.2138/am.2008.2712
    Catlos, E.J., Gilley, L.D., Harrison, T.M., 2002. Interpretation of Monazite Ages Obtained via In Situ Analysis. Chemical Geology, 188(3/4): 193-215. https://doi.org/10.1016/S0009-2541(02)00099-2
    Chatterjee, N., Mazumdar, A.C., Bhattacharya, A., et al., 2007. Mesoproterozoic Granulites of the Shillong-Meghalaya Plateau: Evidence of Westward Continuation of the Prydz Bay Pan-African Suture into Northeastern India. Precambrian Research, 152(1/2): 1-26. https://doi.org/10.1016/j.precamres.2006.08.011
    Chen, N.S., Sun, M., Wang, Q.Y., et al., 2007. Electron Probe Chemical Age of Monazite in Kunzhong Belt of East Kunlun Orogenic Belt: Record of Multiple Tectonism Metamorphic Events. Chinese Science Bulletin, 52(11): 1297-1306(in Chinese). doi: 10.1360/csb2007-52-11-1297
    Chen, Q., Chen, N.S., Wang, Q.Y., et al., 2006. Electron Microprobe Chemical Ages of Monazite from Qinling Group in the Qinling Orogen: Evidence for Late Pan-African Metamorphism? Chinese Science Bulletin, 51(21): 2645-2650(in Chinese). doi: 10.1007/s11434-006-2152-7
    Clavier, N., Podor, R., Dacheux, N., 2011. Crystal Chemistry of the Monazite Structure. Journal of the European Ceramic Society, 31(6): 941-976. https://doi.org/10.1016/j.jeurceramsoc.2010.12.019
    Cressey, G., Wall, F., Cressey, B.A., 1999. Differential REE Uptake by Sector Growth of Monazite. Mineralogical Magazine, 63(6): 813-828. https://doi.org/10.1180/002646199548952
    Crowley, J.L., Brown, R.L., Gervais, F., et al., 2008. Assessing Inheritance of Zircon and Monazite in Granitic Rocks from the Monashee Complex, Canadian Cordillera. Journal of Petrology, 49(11): 1915-1929. https://doi.org/10.1093/petrology/egn047
    Crowley, J.L., Waters, D.J., Searle, M.P., et al., 2009. Pleistocene Melting and Rapid Exhumation of the Nanga Parbat Massif, Pakistan: Age and P-T Conditions of Accessory Mineral Growth in Migmatite and Leucogranite. Earth and Planetary Science Letters, 288(3/4): 408-420. https://doi.org/10.1016/j.epsl.2009.09.044
    Deng, J., Qiu, K.F., Wang, Q.F., et al., 2020. In Situ Dating of Hydrothermal Monazite and Implications for the Geodynamic Controls on Ore Formation in the Jiaodong Gold Province, Eastern China. Economic Geology, 115(3): 671-685. https://doi.org/10.5382/econgeo.4711
    DeWolf, C.P., Belshaw, N.S., O'Nions, R.K., 1993. A Metamorphic History from Micronscale 207Pb/206Pb Chronometry of Archean Monazite. Earth and Planetary Science Letters, 120(3-4): 207-220. https://doi.org/10.1016/0012-821X(93)90240-A
    Evans, J.A., Ewic, J.A.Z.I., Fletcher, I., et al., 2002. Dating Diagenetic Monazite in Mudrocks: Constraining the Oil Window? Journal of the Geological Society, 159(6): 619. doi: 10.1144/0016-764902-066
    Fan, D.D., Li, C.X., Yokoyama, K., et al., 2004. Monazite Age Spectra in the Late Cenozoic of the Changjiang Delta and Its Implication on the Changjiang Run-through Time. Science in China (Ser. D), 34(11): 1015-1022 (in Chinese).
    Fisher, C.M., Hanchar, J.M., Miller, C.F., et al., 2017. Combining Nd Isotopes in Monazite and Hf Isotopes in Zircon to Understand Complex Open-System Processes in Granitic Magmas. Geology, 45(3): 267-270. https://doi.org/10.1130/g38458.1 doi: 10.1130/G38458.1
    Foster, G., Gibson, H.D., Parrish, R., et al., 2002. Textural, Chemical and Isotopic Insights into the Nature and Behaviour of Metamorphic Monazite. Chemical Geology, 191(1/2/3): 183-207. https://doi.org/10.1016/S0009-2541(02)00156-0
    Foster, G., Parrish, R.R., Horstwood, M.S.A., et al., 2004. The Generation of Prograde P-T-t Points and Paths; A Textural, Compositional, and Chronological Study of Metamorphic Monazite. Earth and Planetary Science Letters, 228(1/2): 125-142. https://doi.org/10.1016/j.epsl.2004.09.024
    Guo, R.H., Hu, X.M., Garzanti, E., et al., 2020. How Faithfully do the Geochronological and Geochemical Signatures of Detrital Zircon, Titanite, Rutile and Monazite Record Magmatic and Metamorphic Events? A Case Study from the Himalaya and Tibet. Earth-Science Reviews, 201: 103082. https://doi.org/10.1016/j.earscirev.2020.103082
    Harrison, T.M., Catlos, E.J., Montel, J.M., 2002. U-Th-Pb Dating of Phosphate Minerals. Reviews in Mineralogy and Geochemistry, 48(1): 524-558. https://doi.org/10.2138/rmg.2002.48.14
    Holder, R.M., Hacker, B.R., Kylander-Clark, A.R.C., et al., 2015. Monazite Trace-Element and Isotopic Signatures of (Ultra)High-Pressure Metamorphism: Examples from the Western Gneiss Region, Norway. Chemical Geology, 409: 99-111. https://doi.org/10.1016/j.chemgeo.2015.04.021
    Hu, G.H., Zhang, Q.Q., Li, J.F., et al., 2020. Emplacement Ages of Mesozoic Granites in Liaodong Area: Constraints from Zircon and Monazite U-Pb Dating. Earth Science, 45(11): 3962-3981 (in Chinese with English abstract). https://www.sciencedirect.com/science/article/pii/S0024493712001260
    Iizuka, T., McCulloch, M.T., Komiya, T., et al., 2010. Monazite Geochronology and Geochemistry of Meta-Sediments in the Narryer Gneiss Complex, Western Australia: Constraints on the Tectonothermal History and Provenance. Contributions to Mineralogy and Petrology, 160(6): 803-823. https://doi.org/10.1007/s00410-010-0508-0
    Itano, K., Iizuka, T., Hoshino, M., 2018. REE-Th-U and Nd Isotope Systematics of Monazites in Magnetite- and Ilmenite-Series Granitic Rocks of the Japan Arc: Implications for Its Use as a Tracer of Magma Evolution and Detrital Provenance. Chemical Geology, 484: 69-80. https://doi.org/10.1016/j.chemgeo.2017.11.033
    Janots, E., Berger, A., Gnos, E., et al., 2012. Constraints on Fluid Evolution during Metamorphism from U-Th-Pb Systematics in Alpine Hydrothermal Monazite. Chemical Geology, 326/327: 61-71. https://doi.org/10.1016/j.chemgeo.2012.07.014
    Kempe, U., Lehmann, B., Wolf, D., et al., 2008. U-Pb SHRIMP Geochronology of Th-Poor, Hydrothermal Monazite: An Example from the Llallagua Tin-Porphyry Deposit, Bolivia. Geochimica et Cosmochimica Acta, 72(17): 4352-4366. https://doi.org/10.1016/j.gca.2008.05.059
    Kingsbury, J.A., Miller, C.F., Wooden, J.L., et al., 1993. Monazite Paragenesis and U-Pb Systematics in Rocks of the Eastern Mojave Desert, California, USA: Implications for Thermochronometry. Chemical Geology, 110(1/2/3): 147-167. https://doi.org/10.1016/0009-2541(93)90251-D
    Krenn, E., Finger, F., 2007. Formation of Monazite and Rhabdophane at the Expense of Allanite during Alpine Low Temperature Retrogression of Metapelitic Basement Rocks from Crete, Greece: Microprobe Data and Geochronological Implications. Lithos, 95(1/2): 130-147. https://doi.org/10.1016/j.lithos.2006.07.007
    Liu, P.H., Zou, L., Tian, Z.H., et al., 2019. Discovery and Geological Significance of an Early Paleozoic (ca. 420 Ma) Metamorphic Event from the Eastern Alxa Block: New Evidence from Monazite and Zircon LA-ICP-MS U-Pb Dating. Earth Science, 44(7): 2441-2470(in Chinese with English abstract). https://en.cnki.com.cn/Article_en/CJFDTotal-DQKX201907018.htm
    MacDonald, R., Bagiński, B., Zozulya, D., 2017. Differing Responses of Zircon, Chevkinite-(Ce), Monazite-(Ce) and Fergusonite-(Y) to Hydrothermal Alteration: Evidence from the Keivy Alkaline Province, Kola Peninsula, Russia. Mineralogy and Petrology, 111(4): 523-545. https://doi.org/10.1007/s00710-017-0506-2
    Mahan, K.H., Wernicke, B.P., Jercinovic, M.J., 2010. Th-U-Total Pb Geochronology of Authigenic Monazite in the Adelaide Rift Complex, South Australia, and Implications for the Age of the Type Sturtian and Marinoan Glacial Deposits. Earth and Planetary Science Letters, 289(1-2): 76-86. https://doi.org/10.1016/j.epsl.2009.10.031
    Moecher, D.P., Kelly, E.A., Hietpas, J., et al., 2019. Proof of Recycling in Clastic Sedimentary Systems from Textural Analysis and Geochronology of Detrital Monazite: Implications for Detrital Mineral Provenance Analysis. Geological Society of America Bulletin, 131(7/8): 1115-1132. https://pubs.geoscienceworld.org/gsa/gsabulletin/article-abstract/131/7-8/1115/568784/Proof-of-recycling-in-clastic-sedimentary-systems
    Ning, W.B., Wang, J.P., Xiao, D., et al., 2019. Electron Probe Microanalysis of Monazite and Its Applications to U-Th-Pb Dating of Geological Samples. Journal of Earth Science, 30(5): 952-963. https://doi.org/10.1007/s12583-019-1020-8
    Orejana, D., Merino, E., Villaseca, C., et al., 2012. Electron Microprobe Monazite Geochronology of Granitic Intrusions from the Montes de Toledo Batholith (Central Spain). Geological Journal, 47(1): 41-58. https://doi.org/10.1002/gj.1331
    Parrish, R.R., 1990. U-Pb Dating of Monazite and Its Application to Geological Problems. Canadian Journal of Earth Sciences, 27(11): 1431-1450. https://doi.org/10.1139/e90-152
    Piechocka, A.M., Gregory, C.J., Zi, J.W., et al., 2017. Monazite Trumps Zircon: Applying SHRIMP U-Pb Geochronology to Systematically Evaluate Emplacement Ages of Leucocratic, Low-Temperature Granites in a Complex Precambrian Orogen. Contributions to Mineralogy and Petrology, 172(8): 1-17. https://doi.org/10.1007/s00410-017-1386-5
    Poitrasson, F., Chenery, S., Shepherd, T.J., 2000. Electron Microprobe and LA-ICP-MS Study of Monazite Hydrothermal Alteration: Implications for U-Th-Pb Geochronology and Nuclear Ceramics. Geochimica et Cosmochimica Acta, 64(19): 3283-3297. https://doi.org/10.1016/S0016-7037(00)00433-6
    Poujol, M., Boulvais, P., Kosler, J., 2010. Regional-Scale Cretaceous Albitization in the Pyrenees: Evidence from In Situ U-Th-Pb Dating of Monazite, Titanite and Zircon. Journal of the Geological Society, 167(4): 751-767. https://doi.org/10.1144/0016-76492009-144
    Prent, A.M., Beinlich, A., Raimondo, T., et al., 2020. Apatite and Monazite: An Effective Duo to Unravel Superimposed Fluid-Flow and Deformation Events in Reactivated Shear Zones. Lithos, 376/377: 105752. https://doi.org/10.1016/j.lithos.2020.105752
    Pyle, J.M., Spear, F.S., Cheney, J.T., et al., 2005. Monazite Ages in the Chesham Pond Nappe, SW New Hampshire, USA: Implications for Assembly of Central New England Thrust Sheets. American Mineralogist, 90(4): 592-606. https://doi.org/10.2138/am.2005.1341
    Rasmussen, B., Fletcher, I.R., McNaughton, N.J., 2001. Dating Low-Grade Metamorphic Events by SHRIMP U-Pb Analysis of Monazite in Shales. Geology, 29(10): 963-966. https://doi.org/10.1130/0091-7613(2001)0290963: dlgmeb>2.0.co;2 doi: 10.1130/0091-7613(2001)029<0963:DLGMEB>2.0.CO;2
    Rasmussen, B., Fletcher, I.R., Muhling, J.R., 2007a. In Situ U-Pb Dating and Element Mapping of Three Generations of Monazite: Unravelling Cryptic Tectonothermal Events in Low-Grade Terranes. Geochimica et Cosmochimica Acta, 71(3): 670-690. https://doi.org/10.1016/j.gca.2006.10.020
    Rasmussen, B., Fletcher, I.R., Sheppard, S., 2005. Isotopic Dating of the Migration of a Low-Grade Metamorphic Front during Orogenesis. Geology, 33(10): 773-776. https://doi.org/10.1130/g21666.1 doi: 10.1130/G21666.1
    Rasmussen, B., Muhling, J.R., 2007b. Monazite Begets Monazite: Evidence for Dissolution of Detrital Monazite and Reprecipitation of Syntectonic Monazite during Low-Grade Regional Metamorphism. Contributions to Mineralogy and Petrology, 154(6): 675-689. https://doi.org/10.1007/s00410-007-0216-6
    Rasmussen, B., Muhling, J.R., 2009. Reactions Destroying Detrital Monazite in Greenschist-Facies Sandstones from the Witwatersrand Basin, South Africa. Chemical Geology, 264(1/2/3/4): 311-327. https://doi.org/10.1016/j.chemgeo.2009.03.017
    Rasmussen, B., Muhling, J.R., Fletcher, I.R., et al., 2006a. In Situ SHRIMP U-Pb Dating of Monazite Integrated with Petrology and Textures: Does Bulk Composition Control whether Monazite Forms in Low-Ca Pelitic Rocks during Amphibolite Facies Metamorphism? Geochimica et Cosmochimica Acta, 70(12): 3040-3058. https://doi.org/10.1016/j.gca.2006.03.025
    Rasmussen, B., Sheppard, S., Fletcher, I.R., 2006b. Testing Ore Deposit Models Using In Situ U-Pb Geochronology of Hydrothermal Monazite: Paleoproterozoic Gold Mineralization in Northern Australia. Geology, 34(2): 77. https://doi.org/10.1130/g22058.1 doi: 10.1130/G22058.1
    Rasmussen, B., Zi, J.W., Muhling, J.R., 2019. U-Pb Evidence for a 2.15 Ga Orogenic Event in the Archean Kaapvaal (South Africa) and Pilbara (Western Australia) Cratons. Geology, 47(12): 1131-1135. https://doi.org/10.1130/g46366.1 doi: 10.1130/G46366.1
    Roger, F., Teyssier, C., Whitney, D.L., et al., 2020. Age of Metamorphism and Deformation in the Montagne Noire Dome (French Massif Central): Tapping into the Memory of Fine-Grained Gneisses Using Monazite U-Th-Pb Geochronology. Tectonophysics, 776: 228316. https://doi.org/10.1016/j.tecto.2019.228316
    Rubatto, D., Hermann, J., Buick, I.S., 2006. Temperature and Bulk Composition Control on the Growth of Monazite and Zircon during Low-Pressure Anatexis (Mount Stafford, Central Australia). Journal of Petrology, 47(10): 1973-1996. https://doi.org/10.1093/petrology/egl033
    Santosh, M., Tsunogae, T., Tsutsumi, Y., et al., 2008. Microstructurally Controlled Monazite Chronology of Ultrahigh-Temperature Granulites from Southern India: Implications for the Timing of Gondwana Assembly. Island Arc, 18(2): 248-265. https://doi.org/10.1111/j.1440-1738.2007.00601.x
    Schandl, E.S., Gorton, M.P., 2004. A Textural and Geochemical Guide to the Identification of Hydrothermal Monazite: Criteria for Selection of Samples for Dating Epigenetic Hydrothermal Ore Deposits. Economic Geology, 99(5): 1027-1035. https://doi.org/10.2113/gsecongeo.99.5.1027
    Schulz, B., 2021. Monazite Microstructures and Their Interpretation in Petrochronology. Frontiers in Earth Science, 9: 668566. https://doi.org/10.3389/feart.2021.668566
    Sheppard, S., Rasmussen, B., Muhling, J.R., et al., 2007. Grenvillian-Aged Orogenesis in the Palaeoproterozoic Gascoyne Complex, Western Australia: 1 030-950 Ma Reworking of the Proterozoic Capricorn Orogen. Journal of Metamorphic Geology, 25(4): 477-494. https://doi.org/10.1111/j.1525-1314.2007.00708.x
    Siégel, C., Bryan, S.E., Allen, C.M., et al., 2018. Use and Abuse of Zircon-Based Thermometers: A Critical Review and a Recommended Approach to Identify Antecrystic Zircons. Earth Science Reviews, 176: 87-116. https://doi.org/10.1016/j.earscirev.2017.08.011
    Spear, F.S., Pyle, J.M., 2002. Apatite, Monazite, and Xenotime in Metamorphic Rocks. Reviews in Mineralogy and Geochemistry, 48(1): 293-335. https://doi.org/10.2138/rmg.2002.48.7
    Štípská, P., Hacker, B.R., Racek, M., et al., 2015. Monazite Dating of Prograde and Retrograde P-T-d Paths in the Barrovian Terrane of the Thaya Window, Bohemian Massif. Journal of Petrology, 56(5): 1007-1035. https://doi.org/10.1093/petrology/egv026
    Wan, Y.S., Luo, Z.H., Li, L., 2004.3.8 Ma: SHRIMP U-Pb Zircon Dating of the Younger Alkali Basalt in the Qinghai-Xizang Plateau. Geochimica, 33(5): 442-446(in Chinese with English abstract).
    Wang, J.M., Wu, F.Y., Rubatto, D., et al., 2017. Monazite Behaviour during Isothermal Decompression in Pelitic Granulites: A Case Study from Dinggye, Tibetan Himalaya. Contributions to Mineralogy and Petrology, 172(10): 1-30. https://doi.org/10.1007/s00410-017-1400-y
    Warren, C.J., Greenwood, L.V., Argles, T.W., et al., 2019. Garnet-Monazite Rare Earth Element Relationships in Sub-Solidus Metapelites: A Case Study from Bhutan. Geological Society, London, Special Publications, 478(1): 145-166. https://doi.org/10.1144/sp478.1 doi: 10.1144/SP478.1
    Watson, E.B., Harrison, T.M., 1983. Zircon Saturation Revisited: Temperature and Composition Effects in a Variety of Crustal Magma Types. Earth and Planetary Science Letters, 64(2): 295-304. https://doi.org/10.1016/0012-821X(83)90211-X
    Weinberg, R.F., Wolfram, L.C., Nebel, O., et al., 2020. Decoupled U-Pb Date and Chemical Zonation of Monazite in Migmatites: The Case for Disturbance of Isotopic Systematics by Coupled Dissolution-Reprecipitation. Geochimica et Cosmochimica Acta, 269: 398-412. https://doi.org/10.1016/j.gca.2019.10.024
    White, L.T., Ireland, T.R., 2012. High-Uranium Matrix Effect in Zircon and Its Implications for SHRIMP U-Pb Age Determinations. Chemical Geology, 306-307: 78-91. https://doi.org/10.1016/j.chemgeo.2012.02.025
    Williams, M.L., Jercinovic, M.J., 2002. Microprobe Monazite Geochronology: Putting Absolute Time into Microstructural Analysis. Journal of Structural Geology, 24(6/7): 1013-1028. https://doi.org/10.1016/S0191-8141(01)00088-8
    Williams, M.L., Jercinovic, M.J., Hetherington, C.J., 2007. Microprobe Monazite Geochronology: Understanding Geologic Processes by Integrating Composition and Chronology. Annual Review of Earth and Planetary Sciences, 35(1): 137-175. https://doi.org/10.1146/annurev.earth.35.031306.140228
    Williams, M.L., Jercinovic, M.J., Terry, M.P., 1999. Age Mapping and Dating of Monazite on the Electron Microprobe: Deconvoluting Multistage Tectonic Histories. Geology, 27(11): 1023-1026. https://doi.org/10.1130/0091-7613(1999)0271023: amadom>2.3.co;2 doi: 10.1130/0091-7613(1999)027<1023:AMADOM>2.3.CO;2
    Wing, B.A., Ferry, J.M., Harrison, T.M., 2003. Prograde Destruction and Formation of Monazite and Allanite during Contact and Regional Metamorphism of Pelites: Petrology and Geochronology. Contributions to Mineralogy and Petrology, 145(2): 228-250. https://doi.org/10.1007/s00410-003-0446-1
    Wu, Y.B., Wang, H., Gao, S.C., et al., 2014. LA-ICP-MS Monazite U-Pb Age and Trace Element Constraints on the Granulite-Facies Metamorphism in the Tongbai Orogen, Central China. Journal of Asian Earth Sciences, 82: 90-102. https://doi.org/10.1016/j.jseaes.2013.12.016
    Xu, H.J., Lei, H.C., Xiong, Z.W., et al., 2019. Paleoproterozoic Ultrahigh-Temperature Granulite-Facies Metamorphism in the Sulu Orogen, Eastern China: Evidence from Zircon and Monazite in the Pelitic Granulite. Precambrian Research, 333: 105430. https://doi.org/10.1016/j.precamres.2019.105430
    Yang, P., Pattison, D., 2006. Genesis of Monazite and Y Zoning in Garnet from the Black Hills, South Dakota. Lithos, 88(1/2/3/4): 233-253. https://doi.org/10.1016/j.lithos.2005.08.012
    Zhang, D., Chen, Y., Mao, Q., et al., 2019. Progress and Challenge of Electron Probe Microanalysis Technique. Acta Petrologica Sinica, 35(1): 261-274(in Chinese with English abstract). doi: 10.18654/1000-0569/2019.01.21
    Zhou, X.W., Wei, C.J., Geng, Y.S., et al., 2005. Electron Microprobe Monazite Th-Pb Dating and Its Constraints on Multi-Stage Metamorphism of Low-Pressure Pelitic Granulite from the Jingshan Group in the Jiaobei Terrane. Chinese Science Bulletin, 50(4): 369-374(in Chinese). doi: 10.1360/csb2005-50-4-369
    Zhu, W., Wu, C.D., Wang, J.L., et al., 2019. Provenance Analysis of Detrital Monazite, Zircon and Cr-Spinel in the Northern Tibetan Plateau: Implications for the Paleozoic Tectonothermal History of the Altyn Tagh and Qimen Tagh Ranges. Basin Research, 31(3): 539-561. https://doi.org/10.1111/bre.12333
    Zhu, X.K., O'Nions, R.K., 1999a. Monazite Chemical Composition: Some Implications for Monazite Geochronology. Contributions to Mineralogy and Petrology, 137(4): 351-363. https://doi.org/10.1007/s004100050555
    Zhu, X.K., O'Nions, R.K., 1999b. Zonation of Monazite in Metamorphic Rocks and Its Implications for High Temperature Thermochronology: A Case Study from the Lewisian Terrain. Earth and Planetary Science Letters, 171(2): 209-220. https://doi.org/10.1016/S0012-821X(99)00146-6
    Zi, J.W., Rasmussen, B., Muhling, J.R., et al., 2015. In Situ U-Pb Geochronology of Xenotime and Monazite from the Abra Polymetallic Deposit in the Capricorn Orogen, Australia: Dating Hydrothermal Mineralization and Fluid Flow in a Long-Lived Crustal Structure. Precambrian Research, 260: 91-112. https://doi.org/10.1016/j.precamres.2015.01.010
    Zi, J.W., Rasmussen, B., Muhling, J.R., et al., 2018. U-Pb Geochronology of Monazite in Precambrian Tuffs Reveals Depositional and Metamorphic Histories. Precambrian Research, 313: 109-118. https://doi.org/10.1016/j.precamres.2018.05.015
    Zi, J.W., Rasmussen, B., Muhling, J.R., et al., 2019. U-Pb Monazite Ages of the Kabanga Mafic-Ultramafic Intrusions and Contact Aureoles, Central Africa: Geochronological and Tectonic Implications. GSA Bulletin, 131(11/12): 1857-1870. https://doi.org/10.1130/b35142.1
    Zotto, S.C., Moecher, D.P., Niemi, N.A., et al., 2020. Persistence of Grenvillian Dominance in Laurentian Detrital Zircon Age Systematics Explained by Sedimentary Recycling: Evidence from Detrital Zircon Double Dating and Detrital Monazite Textures and Geochronology. Geology, 48(8): 792-797. https://doi.org/10.1130/g47530.1 doi: 10.1130/G47530.1
    陈能松, 孙敏, 王勤燕, 等, 2007. 东昆仑造山带昆中带的独居石电子探针化学年龄: 多期构造变质事件记录. 科学通报, 52(11): 1297-1306. doi: 10.3321/j.issn:0023-074X.2007.11.014
    陈强, 陈能松, 王勤燕, 等, 2006. 秦岭造山带秦岭岩群独居石电子探针化学年龄: 晚泛非期变质证据. 科学通报, 51(21): 2512-2516. doi: 10.3321/j.issn:0023-074X.2006.21.010
    范代读, 李从先, Yokoyama, K., 等, 2004. 长江三角洲晚新生代地层独居石年龄谱与长江贯通时间研究. 中国科学(D辑: 地球科学), 34(11): 1015-1022. https://www.cnki.com.cn/Article/CJFDTOTAL-JDXK200411003.htm
    胡国辉, 张琪琪, 李建锋, 等, 2020. 辽东地区中生代花岗岩的侵位时代: 锆石和独居石U-Pb年代学. 地球科学, 45(11): 3962-3981. doi: 10.3799/dqkx.2020.293
    刘平华, 邹雷, 田忠华, 等, 2019. 阿拉善地块东部早古生代(约420 Ma)变质事件的发现及其地质意义: 来自独居石与锆石U-Pb定年的新证据. 地球科学, 44(7): 2441-2470. doi: 10.3799/dqkx.2019.092
    万渝生, 罗照华, 李莉, 2004. 3.8Ma: 青藏高原年轻碱性玄武岩锆石离子探针U-Pb年龄测定. 地球化学, 33(5): 442-446. doi: 10.3321/j.issn:0379-1726.2004.05.002
    张迪, 陈意, 毛骞, 等, 2019. 电子探针分析技术进展及面临的挑战. 岩石学报, 35(1): 261-274. https://www.cnki.com.cn/Article/CJFDTOTAL-YSXB201901022.htm
    周喜文, 魏春景, 耿元生, 等, 2005. 胶北荆山群泥质低压麻粒岩电子探针独居石Th-Pb定年及其对多阶段变质演化的制约. 科学通报, 50(4): 369-374. doi: 10.3321/j.issn:0023-074X.2005.04.012
  • 梁晓 附表1.xlsx
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(7)

    Article views (701) PDF downloads(132) Cited by()
    Proportional views

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return