Cretaceous to Cenozoic Magmatic and Crustal Evolution of the Pamir-West Kunlun Orogenic Belt

Fan Yang , Jiyuan Yin , Mike Fowler , Andrew C. Kerr , Zaili Tao

Journal of Earth Science ›› 2025, Vol. 36 ›› Issue (4) : 1820 -1828.

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Journal of Earth Science ›› 2025, Vol. 36 ›› Issue (4) : 1820 -1828. DOI: 10.1007/s12583-025-0195-4
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Cretaceous to Cenozoic Magmatic and Crustal Evolution of the Pamir-West Kunlun Orogenic Belt

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Fan Yang, Jiyuan Yin, Mike Fowler, Andrew C. Kerr, Zaili Tao. Cretaceous to Cenozoic Magmatic and Crustal Evolution of the Pamir-West Kunlun Orogenic Belt. Journal of Earth Science, 2025, 36(4): 1820-1828 DOI:10.1007/s12583-025-0195-4

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References

[1]

AnW, HuX M, GarzantiE, et al.. New Precise Dating of the India-Asia Collision in the Tibetan Himalaya at 61 Ma. Geophysical Research Letters, 2021, 483e2020GL090641

[2]

AminovJ, DingL, MamadjonovY, et al.. Pamir Plateau Formation and Crustal Thickening before the India-Asia Collision Inferred from Dating and Petrology of the 110–92 Ma Southern Pamir Volcanic Sequence. Gondwana Research, 2017, 51: 310-326

[3]

CarrapaB, MustaphaF S, CoscaM, et al.. Multisystem Dating of Modern River Detritus from Tajikistan and China: Implications for Crustal Evolution and Exhumation of the Pamir. Lithosphere, 2014, 6(6): 443-455

[4]

ChapmanJ B, DuceaM N, DeCellesP G, et al.. Tracking Changes in Crustal Thickness during Orogenic Evolution with Sr/Y: An Example from the North American Cordillera. Geology, 2015, 43(10): 919-922

[5]

ChapmanJ B, ScogginS H, KappP, et al.. Mesozoic to Cenozoic Magmatic History of the Pamir. Earth and Planetary Science Letters, 2018, 482: 181-192

[6]

ChapmanJ B, RobinsonA C, CarrapaB, et al.. Cretaceous Shortening and Exhumation History of the South Pamir Terrane. Lithosphere, 2018, 10(4): 494-511

[7]

ChenS Q, ChenH L. Late Cenozoic Activity of the Tashkurgan Normal Fault and Implications for the Origin of the Kongur Shan Extensional System, Eastern Pamir. Journal of Earth Science, 2020, 31(4): 723-734

[8]

ChenY, ZhangQ H, ChenL, et al.. Intra-Oceanic Subduction Termination and Reinitiation of the Eastern Neo-Tethys in Myanmar. Journal of Earth Science, 2024, 35(3): 1053-1058

[9]

DeCellesP G, KappP, GehrelsG E, et al.. Paleocene-Eocene Foreland Basin Evolution in the Himalaya of Southern Tibet and Nepal: Implications for the Age of Initial India-Asia Collision. Tectonics, 2014, 33(5): 824-849

[10]

FrostB R, BarnesC G, CollinsW J, et al.. A Geochemical Classification for Granitic Rocks. Journal of Petrology, 2001, 42(11): 2033-2048

[11]

GehrelsG, KappP, DeCellesP, et al.. Detrital Zircon Geochronology of Pre-Tertiary Strata in the Tibetan-Himalayan Orogen. Tectonics, 2011, 305TC5016

[12]

GelmanS E, DeeringC D, BachmannO, et al.. Identifying the Crystal Graveyards Remaining after Large Silicic Eruptions. Earth and Planetary Science Letters, 2014, 403: 299-306

[13]

GuoZ F, WilsonM, ZhangL H, et al.. The Role of Subduction Channel Mélanges and Convergent Subduction Systems in the Petrogenesis of Post-Collisional K-Rich Mafic Magmatism in NW Tibet. Lithos, 2014, 198/199: 184-201

[14]

GuoZ F, WilsonM. Late Oligocene–Early Miocene Transformation of Postcollisional Magmatism in Tibet. Geology, 2019, 47(8): 776-780

[15]

HuF Y, DuceaM N, LiuS W, et al.. Quantifying Crustal Thickness in Continental Collisional Belts: Global Perspective and a Geologic Application. Scientific Reports, 2017, 77058

[16]

KeS, TengF Z, LiS G, et al.. Mg, Sr, and O Isotope Geochemistry of Syenites from Northwest Xinjiang, China: Tracing Carbonate Recycling during Tethyan Oceanic Subduction. Chemical Geology, 2016, 437: 109-119

[17]

KufnerS K, SchurrB, SipplC, et al.. Deep India Meets Deep Asia: Lithospheric Indentation, Delamination and Break-off under Pamir and Hindu Kush (Central Asia). Earth and Planetary Science Letters, 2016, 435: 171-184

[18]

LiJ Y, XiaY Q, ZhangX L, et al.. Paleozoic Multi-Stage Magmatic Events Related to Proto-Tethys and Paleo-Tethys Evolution: Insights from Intrusive Rocks in the Eastern Altyn Orogen, NW China. Journal of Earth Science, 2024, 35(4): 1130-1148

[19]

LiY P, RobinsonA C, ZucaliM, et al.. Mesozoic Tectonic Evolution in the Kurgovat-Vanch Complex, NW Pamir. Tectonics, 2022, 4110e2021TC007180

[20]

LieuW K, SternR J. The Robustness of Sr/Y and La/Yb as Proxies for Crust Thickness in Modern Arcs. Geosphere, 2019, 15(3): 621-641

[21]

LiuD L, LiH B, SunZ M, et al.. Cenozoic Episodic Uplift and Kinematic Evolution between the Pamir and Southwestern Tien Shan. Tectonophysics, 2017, 712: 438-454

[22]

LiuL J, HouM C, ChenY, et al.. Late Cretaceous Granitoids in Karakorum, Northwest Tibet: petrogenesis and Tectonic Implications. International Geology Review, 2017, 59(2): 151-165

[23]

LiuX Q, ZhangC L, HaoX S, et al.. Early Cretaceous Granitoids in the Southern Pamir: Implications for the Meso-Tethys Evolution of the Pamir Plateau. Lithos, 2020, 362105492

[24]

LiuZ, ZhuD C, RezeauH, et al.. Late Cretaceous Transition from Calc-Alkaline to Alkaline Magmatism in the Eastern Anatolian Plateau: Implications for Microblock Collision Timing. Journal of Petrology, 2022, 6312egac119

[25]

LeeC-T A, MortonD M. High Silica granites: Terminal Porosity and Crystal Settling in Shallow Magma Chambers. Earth and Planetary Science Letters, 2015, 409: 23-31

[26]

LuZ W, GuoX Y, GaoR, et al.. Active Construction of Southernmost Tibet Revealed by Deep Seismic Imaging. Nature Communications, 2022, 133143

[27]

MaL, WangQ, LiZ X, et al.. Early Late Cretaceous (ca. 93 Ma) Norites and Hornblendites in the Milin Area, Eastern Gangdese: Lithosphere-Asthenosphere Interaction during Slab Roll-back and an Insight into Early Late Cretaceous (ca. 100–80 Ma) Magmatic “Flare-up” in Southern Lhasa (Tibet). Lithos, 2013, 172/173: 17-30

[28]

MaX, DanW, WangJ, et al.. Cretaceous Magmatic Migration and Flare-up in Pamir-Karakoram. Lithos, 2023, 454/455107285

[29]

MaXPetrogenesis of Cretaceous Igneous Rocks in Central-South Pamir: From Continental Arc Magmatic Flare-up to Intraplate Small-Scale Magmatism, 2024, Guangzhou. Guangzhou Institute of Geochemistry, Chinese Academy of Sciences. (in Chinese with English Abstract)

[30]

MoghadamH S, LiQ L, GriffinW L, et al.. Temporal Changes in Subduction- to Collision-Related Magmatism in the Neotethyan Orogen: The Southeast Iran Example. Earth-Science Reviews, 2022, 226103930

[31]

NegredoA M, ReplumazA, VillaseñorA, et al.. Modeling the Evolution of Continental Subduction Processes in the Pamir-Hindu Kush Region. Earth and Planetary Science Letters, 2007, 259(1/2): 212-225

[32]

ProfetaL, DuceaM N, ChapmanJ B, et al.. Quantifying Crustal Thickness over Time in Magmatic Arcs. Scientific Reports, 2016, 517786

[33]

ReplumazA, CapitanioF A, GuillotS, et al.. The Coupling of Indian Subduction and Asian Continental Tectonics. Gondwana Research, 2014, 26(2): 608-626

[34]

RobinsonA C, YinA, ManningC E, et al.. Tectonic Evolution of the Northeastern Pamir: Constraints from the Northern Portion of the Cenozoic Kongur Shan Extensional System, Western China. GSA Bulletin, 2004, 116(7/8): 953-973

[35]

RobinsonA C, DuceaM, LapenT J. Detrital Zircon and Isotopic Constraints on the Crustal Architecture and Tectonic Evolution of the Northeastern Pamir. Tectonics, 2012, 312TC2016

[36]

RobinsonA C. Mesozoic Tectonics of the Gondwanan Terranes of the Pamir Plateau. Journal of Asian Earth Sciences, 2015, 102: 170-179

[37]

RutteD, RatschbacherL, SchneiderS, et al.. Building the Pamir-Tibetan Plateau—Crustal Stacking, Extensional Collapse, and Lateral Extrusion in the Central Pamir: 1. Geometry and Kinematics. Tectonics, 2017, 36(3): 342-384

[38]

SchwabM, RatschbacherL, SiebelW, et al.. Assembly of the Pamirs: Age and Origin of Magmatic Belts from the Southern Tien Shan to the Southern Pamirs and Their Relation to Tibet. Tectonics, 2004, 234TC4002

[39]

SobelE R, ChenJ, SchoenbohmL M, et al.. Oceanic-Style Subduction Controls Late Cenozoic Deformation of the Northern Pamir Orogen. Earth and Planetary Science Letters, 2013, 363: 204-218

[40]

SunJ M, XiaoW J, WindleyB F, et al.. Provenance Change of Sediment Input in the Northeastern Foreland of Pamir Related to Collision of the Indian Plate with the Kohistan-Ladakh Arc at around 47 Ma. Tectonics, 2016, 35(2): 315-338

[41]

TangG J, WymanD A, DanW, et al.. Magma Migration and Surface Uplift in Pamir - Western Tibet Driven by Deep Lithospheric Dynamics. Geology, 2023, 51(9): 813-817

[42]

TangG J, WymanD A, DanW, et al.. Protracted and Progressive Crustal Melting during Continental Collision in the Pamir and Plateau Growth. Journal of Petrology, 2024, 654egae024

[43]

TaoZ L, YinJ Y, FowlerM, et al.. Geodynamic Evolution of the Proto-Tethys Ocean in the West Kunlun Orogenic Belt, Northwest Tibetan Plateau: Implications from the Subarc Crust and Lithospheric Mantle Modification. Journal of Petrology, 2024, 6510egae097

[44]

TaoZ L, YinJ Y, SpencerC J, et al.. Subduction Polarity Reversal Facilitated by Plate Coupling during Arc-Continent Collision: Evidence from the Western Kunlun Orogenic Belt, Northwest Tibetan Plateau. Geology, 2024, 52(4): 308-313

[45]

VillarrealD P, RobinsonA C, ChapmanJ B, et al.. Early Cretaceous Displacement on the Tanymas Thrust Fault, Northern Pamir, Tajikistan, and Regional Tectonic Implications. Journal of Asian Earth Sciences: X, 2023, 9100147

[46]

WangJ, WangQ, MaL, et al.. Rapid Recycling of Subducted Sediments in the Subcontinental Lithospheric Mantle. Journal of Petrology, 2023, 648egad056

[47]

WangY M, YinJ Y, ThomsonS N, et al.. Meso–Cenozoic Exhumation of the Altai-Sayan Region: Constrained by Available Low-Temperature Thermochronology. Journal of Earth Science, 2024, 35(6): 2138-2143

[48]

WhiteW M. 238U/204Pb in MORB and Open System Evolution of the Depleted Mantle. Earth and Planetary Science Letters, 1993, 115(1/2/3/4): 211-226

[49]

Xia, W. H., Yin, J. Y., He, Z. Y., et al., 2025. Meso–Cenozoic Tectonic and Thermal History of the Kuqa Depression, Tarim Basin: Insights from Low-Temperature Thermochronology and Vitrinite Reflectance. Journal of Earth Science. https://doi.org/10.1007/s12583-025-2027-y

[50]

XiaoW Â J J, WindleyB Â F F, LiuD Â Y, Y, et al.. Accretionary Tectonics of the Western Kunlun Orogen, China: A Paleozoic–Early Mesozoic, Long-Lived Active Continental Margin with Implications for the Growth of Southern Eurasia. The Journal of Geology, 2005, 113(6): 687-705

[51]

XueS, ZhangW Z, LingM X, et al.. Large-Scale Cretaceous Adakitic Magmatism Induced by Water-Fluxed Melting of Continental Crust during the North China Craton Destruction. Journal of Petrology, 2023, 649egad066

[52]

YangF, YinJ Y, XiaoW J, et al.. Early Cretaceous Continental Arc Magmatism in the Wakhan Corridor, South Pamir: Mantle Evolution and Geodynamic Processes during Flat Subduction of the Neo-Tethyan Oceanic Slab. GSA Bulletin, 2024, 136(9/10): 4175-4194

[53]

YangF, YinJ Y, YangZ M, et al.. Petrogenesis of Late Miocene High Ba-Sr Granitoids in Eastern Pamir, Northwest Tibetan Plateau: Insights into Lithospheric Mantle Evolution and Geodynamic Processes during India-Asia Bidirectional Subduction. Journal of Petrology, 2025, 664egaf026

[54]

YinA, HarrisonT M. Geologic Evolution of the Himalayan-Tibetan Orogen. Annual Review of Earth and Planetary Sciences, 2000, 28: 211-280

[55]

YinJ Y, XiaoW J, SunM, et al.. Petrogenesis of Early Cambrian Granitoids in the Western Kunlun Orogenic Belt, Northwest Tibet: Insight into Early Stage Subduction of the Proto-Tethys Ocean. GSA Bulletin, 2020, 132(9/10): 2221-2240

[56]

YinJ Y, XiaoW J, WangT, et al.. Maturation from Oceanic Arcs to Continental Crust: Insights from Paleozoic Magmatism in West Junggar, NW China. Earth-Science Reviews, 2024, 253104795

[57]

ZanchiA, GaetaniM. The Geology of the Karakoram Range, Pakistan: The New 1:100 000 Geological Map of Central-Western Karakoram. Italian Journal of Geosciences, 2011, 130(2): 161-262

[58]

ZhangC L, ZouH B, LiuX Q. Cretaceous BasaltAndesite Sequence in the Southern Pamir: Arc-Back-Arc Architecture at the Pamir Plateau Genetically Related to the Northward Flat Subductions of the Neo-Tethys Ocean. Lithos, 2022, 422/423106747

[59]

ZhangH R, YangT N, HouZ Q, et al.. Magmatic Expression of Tectonic Transition from Oceanic Subduction to Continental Collision: Insights from the Middle Triassic Rhyolites of the North Qiangtang Block. Gondwana Research, 2020, 87: 67-82

[60]

ZhaoJ M, YuanX H, LiuH B, et al.. The Boundary between the Indian and Asian Tectonic Plates below Tibet. Proceedings of the National Academy of Sciences of the United States of America, 2010, 107(25): 11229-11233

[61]

ZhaoL M, LiY L, XiangH, et al.. A Devonian Shoshonitic Appinite-Granite Suite in the North Qinling Orogenic Belt: Implications for Partial Melting of a Water-Fluxed Lithospheric Mantle in an Extensional Setting. Journal of Petrology, 2023, 646egad040

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