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NARROW
GeoRef Subject
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all geography including DSDP/ODP Sites and Legs
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Africa
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Limpopo Belt (1)
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Southern Africa
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Barberton greenstone belt (1)
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Kaapvaal Craton (5)
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O-18/O-16 (9)
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Primary terms
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Africa
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Swaziland (1)
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Asia
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Himalayas (1)
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Singhbhum shear zone (1)
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Siberian Platform
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carbon
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Cenozoic
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gabbros
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granodiorites (3)
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volcanic rocks
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Integrated Ocean Drilling Program
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stable isotopes
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Hf-177/Hf-176 (9)
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Nd-144/Nd-142 (1)
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Nd-144/Nd-143 (4)
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O-18/O-16 (9)
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Pb-207/Pb-206 (3)
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Mesozoic
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metal ores
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iron ores (1)
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metals
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plutonium
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Pu-244 (1)
-
-
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alkali metals
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lithium
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Li-7/Li-6 (1)
-
-
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alkaline earth metals
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strontium
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Sr-87/Sr-86 (1)
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aluminum (2)
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hafnium
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Hf-177/Hf-176 (9)
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iron (2)
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lead
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Pb-207/Pb-206 (3)
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nickel (1)
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rare earths
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neodymium
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Nd-144/Nd-142 (1)
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Nd-144/Nd-143 (4)
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Sm-147/Nd-144 (1)
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samarium
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Sm-147/Nd-144 (1)
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titanium (4)
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W-182 (1)
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metamorphic rocks
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orthogneiss (1)
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tonalite gneiss (1)
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impactites (1)
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metaigneous rocks (2)
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Abitibi Belt (1)
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Rocky Mountains
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Beartooth Mountains (1)
-
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Ocean Drilling Program
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Leg 197 (1)
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Leg 209
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ODP Site 1271 (1)
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ODP Site 1275 (1)
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ocean floors (3)
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Equatorial Pacific (1)
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Hadean (86)
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upper Precambrian
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Proterozoic
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Great Oxidation Event (2)
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Onaping Formation (1)
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Mesoproterozoic (1)
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Hadean
Evidence for oceans pre-4300 Ma confirmed by preserved igneous compositions in Hadean zircon
The Geological History of Water: From Earth’s Accretion to the Modern Deep Water Cycle
Evolution of magma compositions and phosphorus availability in early Earth’s crust: New constraints from zircon-melt partitioning experiments
Earth’s Earliest Crust
Vestiges of Earth’s earliest depleted mantle reservoir
Correlating mantle cooling with tectonic transitions on early Earth
Hadean tectonics: Insights from machine learning
ABSTRACT The Archean Wyoming Province formed and subsequently grew through a combination of magmatic and tectonic processes from ca. 4.0 to 2.5 Ga. Turning points in crustal evolution are recorded in four distinct phases of magmatism: (1) Early mafic magmatism formed a primordial crust between 4.0 and 3.6 Ga and began the formation of a lithospheric keel below the Wyoming Province in response to active plume-like mantle upwelling in a “stagnant lid”–type tectonic environment; (2) earliest sialic crust formed in the Paleoarchean by melting of hydrated mafic crust to produce rocks of the tonalite-trondhjemite-granodiorite (TTG) suite from ca. 3.6 to 2.9 Ga, with a major crust-forming event at 3.3–3.2 Ga that was probably associated with a transition to plate tectonics by ca. 3.5 Ga; (3) extensive calc-alkalic magmatism occurred during the Mesoarchean and Neoarchean (ca. 2.85–2.6 Ga), forming plutons that are compositionally equivalent to modern-day continental arc plutons; and (4) a late stage of crustal differentiation occurred through intracrustal melting processes ca. 2.6–2.4 Ga. Periods of tectonic quiescence are recognized in the development of stable platform supracrustal sequences (e.g., orthoquartzites, pelitic schists, banded iron formation, metabasites, and marbles) between ca. 3.0 and 2.80 Ga. Evidence for late Archean tectonic thickening of the Wyoming Province through horizontal tectonics and lateral accretion was likely associated with processes similar to modern-style convergent-margin plate tectonics. Although the province is surrounded by Paleoproterozoic orogenic zones, no post-Archean penetrative deformation or calc-alkalic magmatism affected the Wyoming Province prior to the Laramide orogeny. Its Archean crustal evolution produced a strong cratonic continental nucleus prior to incorporation within Laurentia. Distinct lithologic suites, isotopic compositions, and ages provide essential reference markers for models of assembly and breakup of the long-lived Laurentian supercontinent.