Tracing Sediment Melt Activity in the Sub‐Continental Lithosphere: Insights From Zn‐Fe Stable Isotopes
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Ming Li | F. Moynier | H. Ren | Yangtao Zhu | Ganglan Zhang | Rong Xu | Xin Jiang | Yongsheng Liu
[1] S. Foley,et al. Recycled Carbonate‐Bearing Silicate Sediments in the Sources of Circum‐Mediterranean K‐Rich Lavas: Evidence From Mg‐Zn Isotopic Decoupling , 2023, Journal of Geophysical Research: Solid Earth.
[2] D. Ionov,et al. Zinc isotope fractionation in mantle rocks and minerals, and a revised δ66Zn value for the Bulk Silicate Earth , 2022, Geochimica et Cosmochimica Acta.
[3] F. Moynier,et al. A partial melting control on the Zn isotope composition of basalts , 2022, Geochemical Perspectives Letters.
[4] Ming Li. Iron Isotopic Measurement Using Large-Geometry High-Resolution Multi-Collector Inductively Coupled Plasma Mass Spectrometer , 2022, Atomic Spectroscopy.
[5] Iraj Habibi,et al. Large iron isotope fractionation during mantle wedge serpentinization: Implications for iron isotopes of arc magmas , 2022, Earth and Planetary Science Letters.
[6] Ming Li,et al. Copper mobilization in the lower continental crust beneath cratonic margins, a Cu isotope perspective , 2022, Geochimica et Cosmochimica Acta.
[7] Z. Zeng,et al. Zinc Isotopes of the Mariana and Ryukyu Arc‐Related Lavas Reveal Recycling of Forearc Serpentinites Into the Subarc Mantle , 2021, Journal of Geophysical Research: Solid Earth.
[8] F. Spera,et al. Extreme isotopic heterogeneity in Samoan clinopyroxenes constrains sediment recycling , 2021, Nature Communications.
[9] C. Garrido,et al. Iron and zinc stable isotope evidence for open-system high-pressure dehydration of antigorite serpentinite in subduction zones , 2020 .
[10] Sheng‐Ao Liu,et al. Mg and Zn Isotope Evidence for Two Types of Mantle Metasomatism and Deep Recycling of Magnesium Carbonates , 2020, Journal of Geophysical Research: Solid Earth.
[11] P. Vannucchi,et al. Subduction erosion and arc volcanism , 2020, Nature Reviews Earth & Environment.
[12] Peter A. Cawood,et al. The Evolution of the Continental Crust and the Onset of Plate Tectonics , 2020, Frontiers in Earth Science.
[13] E. al.,et al. Archean lithospheric differentiation: Insights from Fe and Zn isotopes , 2020, Geology.
[14] F. Moynier,et al. Zinc isotopic composition of the lower continental crust estimated from lower crustal xenoliths and granulite terrains , 2020 .
[15] B. Moine,et al. Mantle heterogeneity through Zn systematics in oceanic basalts: Evidence for a deep carbon cycling , 2020, Earth-Science Reviews.
[16] F. Moynier,et al. Calcium isotope compositions of mantle pyroxenites , 2020 .
[17] Sheng‐Ao Liu,et al. Zinc Isotope Constraints on Recycled Oceanic Crust in the Mantle Sources of the Emeishan Large Igneous Province , 2019, Journal of Geophysical Research: Solid Earth.
[18] R. Carlson,et al. Metasomatism of the crust-mantle boundary by melts derived from subducted sedimentary carbonates and silicates , 2019, Geochimica et Cosmochimica Acta.
[19] Sheng‐Ao Liu,et al. Tracing the Deep Carbon Cycle Using Metal Stable Isotopes: Opportunities and Challenges , 2019, Engineering.
[20] R. Walker,et al. Destruction of the North China Craton in the Mesozoic , 2019, Annual Review of Earth and Planetary Sciences.
[21] J. Harvey,et al. Extreme enriched and heterogeneous 87Sr/86Sr ratios recorded in magmatic plagioclase from the Samoan hotspot , 2019, Earth and Planetary Science Letters.
[22] F. Huang,et al. Mantle Zn Isotopic Heterogeneity Caused by Melt‐Rock Reaction: Evidence From Fe‐Rich Peridotites and Pyroxenites From the Bohemian Massif, Central Europe , 2019, Journal of Geophysical Research: Solid Earth.
[23] A. Stracke,et al. K-rich hydrous mantle lithosphere beneath the Ontong Java Plateau: Significance for the genesis of oceanic basalts and Archean continents , 2019, Geochimica et Cosmochimica Acta.
[24] A. Giuliani,et al. Progressive metasomatism of the mantle by kimberlite melts: Sr–Nd–Hf–Pb isotope compositions of MARID and PIC minerals , 2019, Earth and Planetary Science Letters.
[25] P. O'Brien,et al. Granitoid melt inclusions in orogenic peridotite and the origin of garnet clinopyroxenite , 2018, Geology.
[26] G. Wörner,et al. Zinc isotopic systematics of Kamchatka-Aleutian arc magmas controlled by mantle melting , 2018, Geochimica et Cosmochimica Acta.
[27] A. Giuliani,et al. New geochemical constraints on the origins of MARID and PIC rocks: Implications for mantle metasomatism and mantle-derived potassic magmatism , 2018, Lithos.
[28] P. Sossi,et al. Controls on the iron isotopic composition of global arc magmas , 2018, Earth and Planetary Science Letters.
[29] B. Debret,et al. Carbonate Transfer during the Onset of Slab Devolatilization: New Insights from Fe and Zn Stable Isotopes , 2018, Journal of Petrology.
[30] F. Moynier,et al. Zinc isotope composition of the Earth and its behaviour during planetary accretion , 2018 .
[31] F. Huang,et al. Combined iron and magnesium isotope geochemistry of pyroxenite xenoliths from Hannuoba, North China Craton: implications for mantle metasomatism , 2017, Contributions to Mineralogy and Petrology.
[32] Limei Tang,et al. Zinc isotope fractionation during mantle melting and constraints on the Zn isotope composition of Earth’s upper mantle , 2017 .
[33] B. Debret,et al. Zinc isotope evidence for sulfate-rich fluid transfer across subduction zones , 2016, Nature Communications.
[34] P. Sossi,et al. Iron isotope systematics in planetary reservoirs , 2016 .
[35] B. Hanan,et al. Unusual δ 56 Fe values in Samoan rejuvenated lavas generated in the mantle , 2016 .
[36] Hong‐fu Zhang,et al. Metasomatism-induced mantle magnesium isotopic heterogeneity: Evidence from pyroxenites , 2016 .
[37] Wei Yang,et al. Zinc isotope evidence for a large-scale carbonated mantle beneath eastern China , 2016 .
[38] J. McManus,et al. Key role of continental margin sediments in the oceanic mass balance of Zn and Zn isotopes , 2016 .
[39] Shan Gao,et al. Accurate Determination of Sr Isotopic Compositions in Clinopyroxene and Silicate Glasses by LA‐MC‐ICP‐MS , 2016 .
[40] M. Millet,et al. Isotopic evidence for iron mobility during subduction , 2016 .
[41] R. Arculus,et al. Redox-variability and controls in subduction zones from an iron-isotope perspective , 2015 .
[42] S. Conticelli,et al. The role of carbon from recycled sediments in the origin of ultrapotassic igneous rocks in the Central Mediterranean , 2015 .
[43] Tiantian Wang,et al. High‐Precision Iron Isotope Analysis of Geological Reference Materials by High‐Resolution MC‐ICP‐MS , 2015 .
[44] S. Eggins,et al. Combined Separation of Cu, Fe and Zn from Rock Matrices and Improved Analytical Protocols for Stable Isotope Determination , 2015 .
[45] Zhong‐Yuan Ren,et al. Chemical and Pb isotope composition of olivine-hosted melt inclusions from the Hannuoba basalts, North China Craton: Implications for petrogenesis and mantle source , 2015 .
[46] H. Williams,et al. Iron isotope tracing of mantle heterogeneity within the source regions of oceanic basalts , 2014 .
[47] Shan Gao,et al. Pyroxenite and peridotite xenoliths from Hexigten, Inner Mongolia: Insights into the Paleo-Asian Ocean subduction-related melt/fluid–peridotite interaction , 2014 .
[48] Shan Gao,et al. In-situ trace elements and Li and Sr isotopes in peridotite xenoliths from Kuandian, North China Craton: Insights into Pacific slab subduction-related mantle modification , 2013 .
[49] F. Moynier,et al. Zinc isotope fractionation during magmatic differentiation and the isotopic composition of the bulk Earth , 2013 .
[50] B. Marty,et al. Iron isotopic systematics of oceanic basalts , 2013 .
[51] J. Hermann,et al. Fractionation of Nb and Ta by biotite and phengite: Implications for the "missing Nb paradox" , 2013 .
[52] V. Kamenetsky,et al. Oxidation state of subarc mantle , 2012 .
[53] P. Asimow,et al. Iron isotopes may reveal the redox conditions of mantle melting from Archean to Present , 2009 .
[54] D. Rubatto,et al. Accessory phase control on the trace element signature of sediment melts in subduction zones , 2009 .
[55] W. Griffin,et al. Age and composition of granulite and pyroxenite xenoliths in Hannuoba basalts reflect Paleogene underplating beneath the North China Craton , 2009 .
[56] Shan Gao,et al. In situ analysis of major and trace elements of anhydrous minerals by LA-ICP-MS without applying an internal standard , 2008 .
[57] P. Kelemen,et al. Geochemistry and magmatic history of eclogites and ultramafic rocks from the Chinese continental scientific drill hole: Subduction and ultrahigh-pressure metamorphism of lower crustal cumulates , 2008 .
[58] Hubert Staudigel,et al. The return of subducted continental crust in Samoan lavas , 2007, Nature.
[59] P. Kelemen,et al. Trace element chemistry of zircons from oceanic crust: A method for distinguishing detrital zircon provenance , 2007 .
[60] T. Pettke,et al. Trace element signature of subduction-zone fluids, melts and supercritical liquids at 120–180 km depth , 2005, Nature.
[61] Shenghong Hu,et al. Melt–peridotite interactions: Links between garnet pyroxenite and high-Mg# signature of continental crust , 2005 .
[62] R. Rudnick,et al. Recycling lower continental crust in the North China craton , 2004, Nature.
[63] W. McDonough,et al. Petrology and geochemistry of spinel peridotite xenoliths from Hannuoba and Qixia, North China craton , 2004 .
[64] V. Salters,et al. Composition of the depleted mantle , 2003 .
[65] F. Hauff,et al. Sr‐Nd‐Pb composition of Mesozoic Pacific oceanic crust (Site 1149 and 801, ODP Leg 185): Implications for alteration of ocean crust and the input into the Izu‐Bonin‐Mariana subduction system , 2003 .
[66] Yigang Xu. Evidence for crustal components in the mantle and constraints on crustal recycling mechanisms: pyroxenite xenoliths from Hannuoba, North China , 2002 .
[67] Shenghong Hu,et al. Geochemistry of lower crustal xenoliths from Neogene Hannuoba basalt, North China craton: implications for petrogenesis and lower crustal composition , 2001 .
[68] Peter A. Cawood,et al. Archean blocks and their boundaries in the North China Craton: lithological, geochemical, structural and P–T path constraints and tectonic evolution , 2001 .
[69] Charles H. Langmuir,et al. The chemical composition of subducting sediment and its consequences for the crust and mantle , 1998 .
[70] T. Plank,et al. Element transport from slab to volcanic front at the Mariana arc , 1997 .
[71] S. Nakano,et al. Trace element transport during dehydration processes in the subducted oceanic crust: 1. Experiments and implications for the origin of ocean island basalts , 1997 .
[72] A. Hofmann,et al. Hydrous, silica-rich melts in the sub-arc mantle and their relationship with erupted arc lavas , 1995, Nature.
[73] T. Wagner,et al. Experimental and natural partitioning of Th, U, Pb and other trace elements between garnet, clinopyroxene and basaltic melts , 1994 .
[74] A. Basu,et al. Sr, Nd, and Pb isotopes of ultramafic xenoliths in volcanic rocks of Eastern China: enriched components EMI and EMII in subcontinental lithosphere , 1992 .
[75] Yan Song,et al. Geochemistry of Hannuoba basalts, eastern China: Constraints on the origin of continental alkalic and tholeiitic basalt , 1990 .
[76] B. Mysen. Experimental determination of nickel partition coefficients between liquid, pargasite, and garnet peridotite minerals and concentration limits of behavior according to Henry's law at high pressure and temperature , 1978 .
[77] B. Mason. Composition of the Earth , 1966, Nature.
[78] M. Lia,et al. High-precision Copper and Zinc Isotopic Measurements in Igneous Rock Standards Using Large-geometry MC-ICP-MS , 2019 .
[79] T. Fujii,et al. The Isotope Geochemistry of Zinc and Copper , 2017 .
[80] R. Rudnick,et al. Composition of the Continental Crust , 2014 .
[81] D. Harlov,et al. Metasomatism and the Chemical Transformation of Rock: The Role of Fluids in Terrestrial and Extraterrestrial Processes , 2013 .
[82] Shan Gao,et al. Continental and Oceanic Crust Recycling-induced Melt^Peridotite Interactions in the Trans-North China Orogen: U^Pb Dating, Hf Isotopes and Trace Elements in Zircons from Mantle Xenoliths , 2010 .
[83] Yue-heng Yang,et al. Contrasting Late Carboniferous and Late Permian–Middle Triassic intrusive suites from the northern margin of the North China craton: Geochronology, petrogenesis, and tectonic implications , 2006 .
[84] Zong-ming Ke. In situ trace elemental compositions and geodynamic significance of clinopyroxene in pyroxenite xenoliths from Hannuoba. , 2005 .
[85] A. Simonettib,et al. Small-scale Sr isotope investigation of clinopyroxenes from peridotite xenoliths by laser ablation MC-ICP-MS — implications for mantle metasomatism , 2003 .