Early Carboniferous ophiolite in central Qiangtang, northern Tibet: record of an oceanic back-arc system in the Palaeo-Tethys Ocean
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Wei Xu | An-Bo Luo | Ming Wang | Jian-Jun Fan | Cai Li | Jin-Heng Liu | Tian-yu Zhang | Meng-jing Xu | Yan-wang Wu | Chao-Ming Xie | Jian‐Jun Fan | An‐Bo Luo
[1] Yiming Liu,et al. Remnants of late Permian–Middle Triassic ocean islands in northern Tibet: Implications for the late-stage evolution of the Paleo-Tethys Ocean , 2017 .
[2] Ming Wang,et al. Early Cretaceous continental arc-related volcanic rocks in the Duobuzha area, northern Tibet: implications for evolution history of the Bangong–Nujiang Ocean , 2017 .
[3] Li-quan Wang,et al. Petrogenesis of Late Devonian–Early Carboniferous volcanic rocks in northern Tibet: New constraints on the Paleozoic tectonic evolution of the Tethyan Ocean , 2017 .
[4] D. Garbe‐Schönberg,et al. Petrogenesis and origin of modern Ethiopian rift basalts: Constraints from isotope and trace element geochemistry , 2016 .
[5] Qiang Wang,et al. Carboniferous and Permian evolutionary records for the Paleo‐Tethys Ocean constrained by newly discovered Xiangtaohu ophiolites from central Qiangtang, central Tibet , 2016 .
[6] Chao-ming Xie,et al. Late Triassic tectonic framework and evolution of Central Qiangtang, Tibet, SW China , 2016 .
[7] Ming Wang,et al. Petrology, geochemistry, and geochronology of mafic rocks from the Taoxinghu Devonian ophiolite, LongmuCo–Shuanghu–Lancang suture zone, northern Tibet: evidence for an intra-oceanic arc–basin system , 2016 .
[8] Qing-guo Zhai,et al. Oldest Paleo-Tethyan ophiolitic mélange in the Tibetan Plateau , 2016 .
[9] Ming Wang,et al. Dating of detrital zircons from the Dabure clastic rocks: the discovery of Neoproterozoic strata in southern Qiangtang, Tibet , 2016 .
[10] Yiming Liu,et al. Depositional environment and provenance of the upper Permian–Lower Triassic Tianquanshan Formation, northern Tibet: implications for the Palaeozoic evolution of the Southern Qiangtang, Lhasa, and Himalayan terranes in the Tibetan Plateau , 2016 .
[11] Wei Xu,et al. Features, provenance, and tectonic significance of Carboniferous–Permian glacial marine diamictites in the Southern Qiangtang–Baoshan block, Tibetan Plateau , 2015 .
[12] Q. Shan,et al. Petrology and geochemistry of late Carboniferous hornblende gabbro from the Awulale Mountains, western Tianshan (NW China): Implication for an arc–nascent back-arc environment , 2015 .
[13] Ming Wang,et al. U–Pb zircon age, geochemical and Lu–Hf isotopic constraints of the Southern Gangma Co basalts in the Central Qiangtang, northern Tibet , 2015 .
[14] Wei Xu,et al. Petrology, geochemistry, and geochronology of boninitic dikes from the Kangqiong ophiolite: implications for the Early Cretaceous evolution of Bangong–Nujiang Neo-Tethys Ocean in Tibet , 2015 .
[15] N. Evans,et al. Petrogenesis and tectonic setting of Triassic granitoids in the Qiangtang terrane, central Tibet: Evidence from U–Pb ages, petrochemistry and Sr–Nd–Hf isotopes , 2015 .
[16] L. Su,et al. Carboniferous arc magmatism in the Qiangtang area, northern Tibet: Zircon U–Pb ages, geochemical and Lu–Hf isotopic characteristics, and tectonic implications , 2015 .
[17] Ming-Rong Deng,et al. Silurian high-pressure granulites from Central Qiangtang, Tibet: Constraints on early Paleozoic collision along the northeastern margin of Gondwana , 2014 .
[18] J. Richards,et al. Geochronology, geochemistry, and zircon Hf isotopic compositions of Mesozoic intermediate-felsic intrusions in central Tibet: Petrogenetic and tectonic implications , 2014 .
[19] Jiao Li,et al. Opening of the Longmu Co–Shuanghu–Lancangjiang ocean: constraints from plagiogranites , 2014 .
[20] J. Pearce. Immobile Element Fingerprinting of Ophiolites , 2014 .
[21] M. Reagan,et al. Izu-Bonin-Mariana Forearc Crust as a Modern Ophiolite Analogue , 2014 .
[22] H. Furnes,et al. Ophiolites and Their Origins , 2014 .
[23] Ming Wang,et al. Geochronology, geochemistry, Hf isotopic compositions and formation mechanism of radial mafic dikes in northern Tibet , 2014 .
[24] T. Plank. 4.17 – The Chemical Composition of Subducting Sediments , 2014 .
[25] S. Poli,et al. Devolatilization during subduction , 2014 .
[26] R. Rudnick,et al. Composition of the Continental Crust , 2014 .
[27] Ming Wang,et al. Cambrian volcanism in the Lhasa terrane, southern Tibet: Record of an early Paleozoic Andean-type magmatic arc along the Gondwana proto-Tethyan margin , 2013 .
[28] G. Shi,et al. A review of Permian stratigraphy, palaeobiogeography and palaeogeography of the Qinghai-Tibet Plateau , 2013 .
[29] Kuo‐Lung Wang,et al. The Carboniferous ophiolite in the middle of the Qiangtang terrane, Northern Tibet: SHRIMP U–Pb dating, geochemical and Sr–Nd–Hf isotopic characteristics , 2013 .
[30] Z. Hou,et al. The origin and pre-Cenozoic evolution of the Tibetan Plateau , 2013 .
[31] I. Metcalfe. Gondwana dispersion and Asian accretion: Tectonic and palaeogeographic evolution of eastern Tethys , 2013 .
[32] P. C. Hess. Phase Equilibria Constraints on the Origin of Ocean Floor Basalts , 2013 .
[33] R. Stern,et al. Origin of Back‐Arc Basin Magmas: Trace Element and Isotope Perspectives , 2013 .
[34] Kuo‐Lung Wang,et al. Triassic arc magmatism in the Qiangtang area, northern Tibet: Zircon U–Pb ages, geochemical and Sr–Nd–Hf isotopic characteristics, and tectonic implications , 2013 .
[35] H. Pei. Albite granites in Taoxinghu ophiolite in central Qiangtang, Qinghai-Tibet Plateau,China: Evidences of Paleo-Tethys oceanic crust subduction , 2013 .
[36] Hong-lin Yuan,et al. Cambrian bimodal volcanism in the Lhasa Terrane, southern Tibet: Record of an early Paleozoic Andean-type magmatic arc in the Australian proto-Tethyan margin , 2012 .
[37] Yang Liu,et al. Structural sequence and geochronology of the Qomo Ri accretionary complex, Central Qiangtang, Tibet: Implications for the Late Triassic subduction of the Paleo-Tethys Ocean , 2012 .
[38] G. Pan,et al. Tectonic evolution of the Qinghai-Tibet Plateau , 2012 .
[39] H. Furnes,et al. Structure, geochemistry, and tectonic evolution of trench-distal backarc oceanic crust in the western Norwegian Caledonides, Solund-Stavfjord ophiolite (Norway) , 2012 .
[40] Li Su,et al. Triassic Subduction of the Paleo-Tethys in northern Tibet, China: Evidence from the geochemical and isotopic characteristics of eclogites and blueschists of the Qiangtang Block , 2011 .
[41] Yan Liu,et al. Evidence for palaeo-Tethyan oceanic subduction within central Qiangtang, northern Tibet , 2011 .
[42] Qing-guo Zhai,et al. Triassic eclogites from central Qiangtang, northern Tibet, China: Petrology, geochronology and metamorphic P–T path , 2011 .
[43] H. Furnes,et al. Ophiolite genesis and global tectonics: Geochemical and tectonic fingerprinting of ancient oceanic lithosphere , 2011 .
[44] Z. Hou,et al. The Lhasa Terrane: Record of a microcontinent and its histories of drift and growth , 2010 .
[45] Ş. Genç,et al. Tectonic setting of the Jurassic bimodal magmatism in the Sakarya Zone (Central and Western Pontides), Northern Turkey: A geochemical and isotopic approach , 2010 .
[46] Qing-guo Zhai,et al. SHRIMP U-Pb dating and Hf isotopic analyses of Middle Ordovician meta-cumulate gabbro in central Qiangtang, northern Tibetan Plateau , 2010 .
[47] M. Reagan,et al. To understand subduction initiation, study forearc crust: To understand forearc crust, study ophiolites , 2010 .
[48] 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 .
[49] R. Stern. The anatomy and ontogeny of modern intra-oceanic arc systems , 2010 .
[50] H. Furnes,et al. Structure and geochemistry of Tethyan ophiolites and their petrogenesis in subduction rollback systems , 2009 .
[51] G. Gehrels,et al. Mediterranean-style closure of the Paleo-Tethys ocean , 2008 .
[52] V. Bortolotti,et al. THE JURASSIC ASSOCIATION OF BACKARC BASIN OPHIOLITES AND CALC-ALKALINE VOLCANICS IN THE GUEVGUELI COMPLEX (NORTHERN GREECE): IMPLICATION FOR THE EVOLUTION OF THE VARDAR ZONE , 2008 .
[53] Zhu Tongxing. SHRIMP U-Pb zircon dating of Eopaleozoic cumulate in Guoganjianian Mt. from central Qiangtang area of northern Tibet—Considering the evolvement of Proto-and Paleo-Tethys , 2008 .
[54] M. Keskin. Domal uplift and volcanism in a collision zone without a mantle plume : Evidence from Eastern Anatolia , 2008 .
[55] J. Pearce. Geochemical fingerprinting of oceanic basalts with applications to ophiolite classification and the search for Archean oceanic crust , 2008 .
[56] H. Furnes,et al. Suprasubduction zone ophiolite formation along the periphery of Mesozoic Gondwana , 2007 .
[57] Hu Xiao-peng. Establishment of the Upper Triassic Wanghuling Formation at Guoganjianian Mountain, central Qiangtang, Qinghai-Tibet Plateau, and its significance , 2007 .
[58] Yue-heng Yang,et al. Hf isotopic compositions of the standard zircons and baddeleyites used in U–Pb geochronology , 2006 .
[59] J. Berndt,et al. Petrogenesis of Tertiary Mafic Alkaline Magmas in the Hocheifel, Germany , 2006 .
[60] R. Stern,et al. Geochemical mapping of the Mariana arc‐basin system: Implications for the nature and distribution of subduction components , 2005 .
[61] D. Günther,et al. Accurate U‐Pb Age and Trace Element Determinations of Zircon by Laser Ablation‐Inductively Coupled Plasma‐Mass Spectrometry , 2004 .
[62] R. Stern. Subduction initiation: spontaneous and induced , 2004 .
[63] S. Eggins,et al. Zircon Hf-isotope analysis with an excimer laser, depth profiling, ablation of complex geometries, and concomitant age estimation , 2004 .
[64] D. Weis,et al. Hf and Lu isotopic reference values for the zircon standard 91500 by MC-ICP-MS , 2004 .
[65] A. Photiades,et al. Mid-ocean ridge and supra-subduction affinities in the Pindos ophiolites (Greece): implications for magma genesis in a forearc setting , 2004 .
[66] T. Harrison,et al. Tectonic evolution of the early Mesozoic blueschist‐bearing Qiangtang metamorphic belt, central Tibet , 2003 .
[67] B. Taylor,et al. Back-arc basin basalt systematics , 2003 .
[68] K. Ludwig. User's Manual for Isoplot 3.00 - A Geochronological Toolkit for Microsoft Excel , 2003 .
[69] R. Rudnick,et al. 3.01 – Composition of the Continental Crust , 2003 .
[70] T. Andersen. Correction of common lead in U-Pb analyses that do not report 204Pb , 2002 .
[71] P. Stoffers,et al. Petrogenesis of the Back-arc East Scotia Ridge, South Atlantic Ocean , 2002 .
[72] W. Griffin,et al. Zircon chemistry and magma mixing, SE China: In-situ analysis of Hf isotopes, Tonglu and Pingtan igneous complexes , 2002 .
[73] S. Eggins,et al. Hafnium isotope evidence for ‘conservative’ element mobility during subduction zone processes , 2001 .
[74] J. Shervais. Birth, death, and resurrection: The life cycle of suprasubduction zone ophiolites , 2001 .
[75] R. Livermore,et al. Magma Supply in Back-arc Spreading Centre Segment E2, East Scotia Ridge , 2000 .
[76] C. Langmuir,et al. Distinguishing melt and fluid subduction components in Umnak Volcanics, Aleutian Arc , 2000 .
[77] An Yin,et al. Geologic Evolution of the Himalayan-Tibetan Orogen , 2000 .
[78] T. Harrison,et al. Blueschist-bearing metamorphic core complexes in the Qiangtang block reveal deep crustal structure of northern Tibet , 2000 .
[79] Charles H. Langmuir,et al. The chemical composition of subducting sediment and its consequences for the crust and mantle , 1998 .
[80] T. Plank,et al. Element transport from slab to volcanic front at the Mariana arc , 1997 .
[81] Turner,et al. U-Th Isotopes in Arc Magmas: Implications for Element Transfer from the Subducted Crust , 1997, Science.
[82] W. Griffin,et al. THREE NATURAL ZIRCON STANDARDS FOR U‐TH‐PB, LU‐HF, TRACE ELEMENT AND REE ANALYSES , 1995 .
[83] D. Peate,et al. Tectonic Implications of the Composition of Volcanic Arc Magmas , 1995 .
[84] Cai Li,et al. Paleozoic Stratigraphy in the Qiangtang Region of Tibet: Relations of the Gondwana and Yangtze Continents and Ocean Closure Near the End of the Carboniferous , 1993 .
[85] F. McDermott,et al. Mantle and Slab Contributions in ARC Magmas , 1993 .
[86] R. Stern,et al. Subduction zone infancy: Examples from the Eocene Izu-Bonin-Mariana and Jurassic California arcs , 1992 .
[87] M. McCulloch,et al. Geochemical and geodynamical constraints on subduction zone magmatism , 1991 .
[88] E. Ito,et al. Enriched back-arc basin basalts from the northern Mariana Trough: implications for the magmatic evolution of back-arc basins , 1990 .
[89] W. McDonough,et al. Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes , 1989, Geological Society, London, Special Publications.
[90] J. Sinton,et al. Mariana Trough lavas from 18°N: Implications for the origin of back arc basin basalts , 1987 .
[91] A. Sengor. Tectonics of the Tethysides: Orogenic Collage Development in a Collisional Setting , 1987 .
[92] A. Hofmann,et al. Isotopic and trace element composition of volcanic glasses from the Akaki Canyon, Cyprus: implications for the origin of the Troodos ophiolite , 1985 .
[93] Julian A. Pearce,et al. Characteristics and tectonic significance of supra-subduction zone ophiolites , 1984, Geological Society, London, Special Publications.
[94] J. Malpas,et al. The volcanic stratigraphy and petrogenesis of the Oman ophiolite complex , 1982 .
[95] John W. Shervais,et al. Ti-V plots and the petrogenesis of modern and ophiolitic lavas , 1982 .
[96] J. A. Philpotts,et al. Basaltic Glasses from the Mariana Trough , 1982 .
[97] E. Uchupi. Tectonic evolution. , 1980, Science.
[98] D. Green,et al. Integrated Models of Basalt Petrogenesis: A Study of Quartz Tholeiites to Olivine Melilitites from South Eastern Australia Utilizing Geochemical and Experimental Petrological Data , 1978 .
[99] J. Winchester,et al. Geochemical discrimination of different magma series and their differentiation products using immobile elements , 1977 .
[100] J. Gill. Composition and age of Lau Basin and Ridge volcanic rocks: Implications for evolution of an interarc basin and remnant arc , 1976 .
[101] A. Miyashiro. Classification, Characteristics, and Origin of Ophiolites , 1975, The Journal of Geology.
[102] A. Miyashiro. Volcanic rock series in island arcs and active continental margins , 1974 .
[103] O. Nuttli. Annual Review of Earth and Planetary Sciences , 1973, Bulletin of the Seismological Society of America.
[104] A. Miyashiro. The Troodos ophiolitic complex was probably formed in an island arc , 1973 .
[105] J. Dewey,et al. Origin and Emplacement of the Ophiolite Suite: Appalachian Ophiolites in Newfoundland , 1971 .