The thick, seismically fast lithospheric keels underlying continental cores (cratons) are thought to have formed in the Precambrian and resisted subsequent tectonic destruction. A consensus is emerging from a variety of disciplines that keels are vertically stratified, but the processes that led to their development remain uncertain. Eastern Canada is a natural laboratory to study Precambrian lithospheric formation and evolution. It comprises the largest Archean craton in the world, the Superior Craton, surrounded by multiple Proterozoic orogenic belts. To investigate its lithospheric structure, we construct a frequency-dependent anisotropic seismic model of the region using Rayleigh waves from teleseismic earthquakes recorded at broadband seismic stations across eastern Canada. The joint interpretation of phase velocity heterogeneity and azimuthal anisotropy patterns reveals a seismically fast and anisotropically complex Superior Craton. The upper lithosphere records fossilized Archean tectonic deformation: anisotropic patterns align with the orientation of the main tectonic boundaries at periods 110s. This implies that cratonic blocks were strong enough to sustain plate-scale deformation during collision at 2.5Ga. Cratonic lithosphere with fossil anisotropy partially extends beneath adjacent Proterozoic belts. At periods sensitive to the lower lithosphere, we detect fast, more homogenous, and weakly anisotropic material, documenting postassembly lithospheric growth, possibly in a slow or stagnant convection regime. A heterogeneous, anisotropic transitional zone may also be present at the base of the keel. The detection of multiple lithospheric fabrics at different periods with distinct tectonic origins supports growing evidence that cratonization processes may be episodic and are not exclusively an Archean phenomenon. Plain Language Summary The roots of the oldest parts of the continents are unusually thick (approximate to 250km) and preserve structures dating back to the Earth's most ancient geological period, >2.5 billion years ago. The structure, formation, and preservation of these thick continental roots are still debated. Eastern Canada has a geological record stretching back over more than 3 billion years, providing an excellent opportunity to study the Earth's early history and the formation and evolution of continents. To investigate the deep structure beneath this region, we use earthquake energy recorded at seismic stations across eastern Canada to build an image of the continental interior. Our results show that the ancient continental root is made up of at least two layers, each with a different formation mechanism. The upper layer preserves the signature of continental deformation older than 2.5 billion years, whereas the lower layer properties suggest later downward growth of the root above a slow-moving mantle. The results support the idea that the thick continental roots formed episodically and across multiple geological periods.
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Natl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, IndiaNatl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, India
Roy, Sunil Kumar
Srinagesh, D.
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Natl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, IndiaNatl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, India
Srinagesh, D.
Saikia, Dipankar
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Natl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, IndiaNatl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, India
Saikia, Dipankar
Singh, Arun
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Natl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, IndiaNatl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, India
Singh, Arun
Kumar, M. Ravi
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Natl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, IndiaNatl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, India
机构:
China Earthquake Adm, Inst Geophys, Beijing 100081, Peoples R China
Peking Univ, Sch Earth & Space Sci, Beijing 100871, Peoples R ChinaChina Earthquake Adm, Inst Geophys, Beijing 100081, Peoples R China
Huang Xiang
Ding ZhiFeng
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China Earthquake Adm, Inst Geophys, Beijing 100081, Peoples R ChinaChina Earthquake Adm, Inst Geophys, Beijing 100081, Peoples R China
Ding ZhiFeng
Ning JieYuan
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Peking Univ, Sch Earth & Space Sci, Beijing 100871, Peoples R ChinaChina Earthquake Adm, Inst Geophys, Beijing 100081, Peoples R China
Ning JieYuan
Chang LiJun
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China Earthquake Adm, Inst Geophys, Beijing 100081, Peoples R ChinaChina Earthquake Adm, Inst Geophys, Beijing 100081, Peoples R China
Chang LiJun
CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION,
2021,
64
(08):
: 2701
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2715
机构:
North East Geophys Res Lab IIG, Wilton Hall Estate, Shillong 793005, IndiaNorth East Geophys Res Lab IIG, Wilton Hall Estate, Shillong 793005, India
Pandey, Shantanu
Yuan, Xiaohui
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Deutsch GeoForschungsZentrum GFZ, Telegrafenberg, D-14473 Potsdam, GermanyNorth East Geophys Res Lab IIG, Wilton Hall Estate, Shillong 793005, India
Yuan, Xiaohui
Debayle, Eric
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Univ Lyon, Univ Lyon 1, ENSL, UJM,CNRS,LGL TPE, Villeurbanne, FranceNorth East Geophys Res Lab IIG, Wilton Hall Estate, Shillong 793005, India
Debayle, Eric
Geissler, Wolfram H.
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Alfred Wegener Inst, Helmholtz Ctr Polar & Marine Res, Alten Hafen 26, D-27568 Bremerhaven, GermanyNorth East Geophys Res Lab IIG, Wilton Hall Estate, Shillong 793005, India
Geissler, Wolfram H.
Heit, Benjamin
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Deutsch GeoForschungsZentrum GFZ, Telegrafenberg, D-14473 Potsdam, GermanyNorth East Geophys Res Lab IIG, Wilton Hall Estate, Shillong 793005, India