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GeoRef Subject
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all geography including DSDP/ODP Sites and Legs
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Asia
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Central Asia
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Kazakhstan
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Kokchetav Kazakhstan
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Kokchetav Massif (1)
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Far East
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Central America
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Sr-87/Sr-86 (5)
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zinc (1)
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oxygen
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O-18 (1)
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O-18/O-16 (2)
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sulfur
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S-34/S-32 (1)
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fossils
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Chordata
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Vertebrata
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Reptilia
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Anapsida
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Testudines
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ichnofossils (1)
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Invertebrata
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Ostracoda (3)
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Brachiopoda (1)
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Mollusca
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Bivalvia
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Cephalopoda
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Gastropoda (2)
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Protista
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Foraminifera
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Globigerinacea
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Orbitoidacea
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problematic fossils
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geologic age
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Tertiary
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Oligocene
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Paleocene
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K-T boundary (4)
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upper Paleocene (1)
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Wilcox Group (1)
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Mesozoic
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Cretaceous
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Upper Cretaceous
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K-T boundary (4)
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Jurassic
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Upper Jurassic
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Paleozoic
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Devonian (1)
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Phanerozoic (1)
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Precambrian
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upper Precambrian
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Proterozoic (1)
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igneous rocks
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igneous rocks
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plutonic rocks
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diabase (2)
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gabbros (2)
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volcanic rocks
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mid-ocean ridge basalts (3)
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sulfates
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Primary terms
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absolute age (11)
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Asia
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Central Asia
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Kazakhstan
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Kokchetav Kazakhstan
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Kokchetav Massif (1)
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Lake Balkhash (1)
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Far East
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Burma (1)
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China
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Xinjiang China
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Japan
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Sambagawa Belt (1)
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Himalayas (1)
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Iran (1)
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Atlantic Ocean
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North Atlantic
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Caribbean Sea
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Cayman Trough (3)
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Nicaragua Rise (1)
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Gulf of Mexico
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Campeche Bank (1)
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Australasia
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Canada
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Yukon Territory (1)
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Caribbean region
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West Indies
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Antilles
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Greater Antilles
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Cuba
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Camaguey Cuba (1)
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La Habana Cuba
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Havana Cuba (2)
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Pinar del Rio Cuba
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Sierra de los Organos (1)
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Santiago de Cuba (1)
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Villa Clara Cuba (1)
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Hispaniola
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Dominican Republic (3)
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Haiti
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Beloc Haiti (1)
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Jamaica (7)
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Puerto Rico
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Ponce Puerto Rico (1)
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Lesser Antilles
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Netherlands Antilles
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Curacao (1)
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Trinidad and Tobago
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Virgin Islands (2)
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Bahamas (1)
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Cayman Islands (1)
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-
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catalogs (2)
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Cenozoic
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Quaternary
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Holocene (3)
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Pleistocene (1)
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Tertiary
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Neogene
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Miocene
-
lower Miocene
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Aquitanian (1)
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-
-
Pliocene (1)
-
-
Paleogene
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Eocene
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lower Eocene (1)
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upper Eocene (1)
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-
Oligocene
-
lower Oligocene (1)
-
-
Paleocene
-
lower Paleocene
-
Danian (2)
-
K-T boundary (4)
-
-
upper Paleocene (1)
-
-
Wilcox Group (1)
-
-
-
-
Central America
-
Belize (3)
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Guatemala (3)
-
-
chemical analysis (2)
-
Chordata
-
Vertebrata
-
Tetrapoda
-
Reptilia
-
Anapsida
-
Testudines
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Chelonia (1)
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Pleurodira (1)
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-
-
-
-
-
-
clay mineralogy (3)
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continental drift (1)
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crust (9)
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crystal chemistry (1)
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crystal growth (1)
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crystal structure (2)
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data processing (2)
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Deep Sea Drilling Project
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IPOD
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Leg 77
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DSDP Site 539 (1)
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DSDP Site 540 (1)
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deformation (1)
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Earth (1)
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Europe
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Western Alps
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Dauphine Alps
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Vercors (1)
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Central Europe
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Germany (1)
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Hungary (1)
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Southern Europe
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hydrology (1)
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granodiorites (2)
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pegmatite (1)
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syenites (1)
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chromitite (3)
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peridotites
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dunite (1)
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harzburgite (1)
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volcanic rocks
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andesites
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boninite (2)
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basalts
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flood basalts (1)
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mid-ocean ridge basalts (3)
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tholeiite (2)
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inclusions
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fluid inclusions (2)
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intrusions (11)
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Invertebrata
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Arthropoda
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Mandibulata
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Crustacea
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Ostracoda (3)
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Brachiopoda (1)
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Mollusca
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Bivalvia
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Heterodonta
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Rudistae (4)
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Cephalopoda
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Ammonoidea (1)
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Gastropoda (2)
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GeoRef Categories
Era and Period
Epoch and Age
Book Series
Date
Availability
Cuba
The Geology, Geochemistry, and Mineralogy of the Moa Bay Ni Laterite Mining District, Cuba Available to Purchase
Ultrahigh-pressure to high-pressure eclogite in Cuban ophiolitic mélange reveals proto-Caribbean spreading ridge subduction Available to Purchase
Background Seismic Noise Levels among the Caribbean Network and the Role of Station Proximity to Coastline Available to Purchase
Insights into Caribbean tectonics from a detrital zircon U-Pb provenance study of siliciclastic strata in western and central Cuba Available to Purchase
Calibration of the Local Magnitude Scale ( M L ) for Eastern Cuba Available to Purchase
Evaluation of the Event Detection Level of the Cuban Seismic Network Available to Purchase
Strontium isotope dating of evaporites and the breakup of the Gulf of Mexico and Proto–Caribbean Seaway Available to Purchase
ABSTRACT New and existing strontium isotope data are given for several widespread evaporites from western equatorial Pangea. The data indicate evaporite deposition occurred on proximal margins of the Gulf of Mexico at ca. 169 Ma (Bajocian, not Callovian as commonly thought) and 166 Ma in Trinidad (Bathonian-Callovian boundary). The 166 Ma age may also apply to undated evaporite on the Bahamian margin, conjugate rift of Trinidad, and now in Cuba. We show that: (1) the Trinidadian (and Bahamian?) evaporite pertains to rifting rather than to Late Jurassic–Cretaceous carbonate platform deposition; (2) the Mata Espino-101B evaporite (a borehole in Veracruz Basin, Mexico) is not Paleocene but Bajocian (halite) or Bathonian (gypsum) and hence is not related to possible Paleogene Gulf of Mexico desiccation; (3) evaporite deposition may have offlapped basinward in the Gulf of Mexico (Bathonian–early Oxfordian in more distal areas), because most Atlantic opening models preclude the Gulf of Mexico from being large enough by 169 Ma to accommodate the mapped expanse of autochthonous salt deposition; and (4) a 3–9 m.y. hiatus (the Norphlet window) is apparent in proximal areas around the Gulf of Mexico between evaporite and upper Oxfordian marine successions, caused perhaps by proximal margin uplift (flexural or thermal) or by Gulf of Mexico water level remaining below paleo–sea level (evaporation?) during Bathonian–early Oxfordian time. Although a 20–30 m.y. hiatus may exist below evaporite in the U.S. coast, cordilleran Mexico was tectonically active into the Middle Jurassic, and pre-salt continental deposits are closer in age to salt deposition there. Pre-salt strata along Campeche–northern Yucatán remain undated. Our data do not resolve if the evaporite was sourced from the Atlantic, the Pacific, or both, but the fact that the Trinidadian evaporite is younger than Gulf of Mexico evaporite, and the presence of Bajocian marine and evaporite sections across Mexico perhaps favor the Pacific as the source.
The January 2014 Northern Cuba Earthquake Sequence: Unusual Location and Unexpected Source Mechanism Variability Available to Purchase
Petrogenesis of plagiogranite and associated diorites and mafic rocks in the Habana–Matanzas ophiolites, northwestern half of central Cuba Available to Purchase
Born in the Pacific and raised in the Caribbean: construction of the Escambray nappe stack, central Cuba. A review Open Access
Nanoscale partitioning of Ru, Ir, and Pt in base-metal sulfides from the Caridad chromite deposit, Cuba Available to Purchase
Natural clay from Cuba for environmental remediation Available to Purchase
BIOSTRATIGRAPHY AND EVOLUTIONARY TENDENCIES OF EOCENE HETEROSTEGINES IN WESTERN AND CENTRAL CUBA BASED ON MORPHOMETRIC ANALYSES Available to Purchase
Seismic Hazard for Cuba: A New Approach Available to Purchase
Evolution of the Caribbean plate and origin of the Gulf of Mexico in light of plate motions accommodated by strike-slip faulting Available to Purchase
Restoration of plate consumption recorded by Caribbean arc volcanism reveals probable plate movements that led to the emplacement of the proto–Caribbean plate into the present Caribbean region and provided the space necessary to accommodate the rotation of the Yucatán Peninsula concurrent with the opening of the Gulf of Mexico between ca. 170 Ma and 150 Ma. Fault movement of the Yucatán, caused by edge-driven processes, resulted in counterclockwise rotation, as shown by paleomagnetic studies. Restoration of Yucatán rotation necessitates the presence of a paleogeography different from the current distribution of the Greater and Lesser Antilles. During emplacement of the Caribbean plate region, four magmatic belts with distinct ages and different geochemical characteristics are recorded by exposures on islands of the Antilles. The belts distinguish the following segments of Cretaceous and Tertiary magmatic arcs: (1) an Early Cretaceous geochemically primitive island-arc tholeiite suite (PIA/IAT) typically containing distinctive dacite and rhyodacite that formed between Hauterivian and early Albian time (ca. 135–110 Ma); (2) after a hiatus at ca. 105 Ma of ∼10 m.y., a voluminous, more-extensive calc-alkaline magmatic suite, consisting mainly of basaltic andesite, andesite, and locally important dacite, developed beginning in the Cenomanian and continuing into the Campanian (ca. 95–70 Ma); (3) a second (calc-alkaline) suite, spatially restricted relative to the older belts, that consists of volcanic and intrusive rocks, which formed between the early Paleocene and the middle Eocene (ca. 60–45 Ma); and (4) a currently active calc-alkaline suite in the Lesser Antilles typically composed of a basalt-andesite-dacite series that began to develop in the Eocene (ca. 45 Ma). Plate convergence took place along northeastward- or eastward-trending axes during the formation of the Caribbean, which is outlined by the Antillean islands and Central and South America. Movements were facilitated by strike-slip faults, commonly trench-trench transforms, as subducting crust was consumed. Restoration of apparent displacements of at least several hundreds of thousands of kilometers along the inferred lateral faults of the Eocene and younger Cayman set separating Puerto Rico, Hispaniola, and the Oriente Province of southeastern Cuba brings together Eocene volcanic rocks revealing a magmatic domain along the paleo–south-southwestern margin of the Greater Antilles. The transforms along the southern margin of the Caribbean plate are mainly obscured by contractional deformation related to the northward motion of South America as it was thrust over the faulted plate margin. Restoration of the Caribbean plate also translates the Nicaragua Rise westward, thereby revealing a pathway along which Pacific oceanic lithosphere, mainly composed of a large, Late Cretaceous igneous province (Caribbean large igneous province), manifest as an oceanic plateau (Caribbean-Colombian oceanic plateau), converged toward and subducted beneath the southern flank of the Cretaceous Greater Antilles magmatic belt between 65 and 45 Ma. The Eocene arc rocks overlie or abut previously recognized Early and Late Cretaceous subduction-related units. Eocene consumption of Pacific lithosphere ceased with the arrival, collision, and accretion of buoyant lithosphere composed of Caribbean large igneous province. The Greater Antilles formed during Late Cretaceous subduction of Jurassic ocean crust beneath an Early Cretaceous arc formed at the eastern margin of the proto–Pacific plate. Formation of a volcanic edifice above Early Cretaceous arc rocks was followed by plate collision and coupling of the Greater Antilles belt against the Bahama Platform. The most straightforward path of the Greater Antilles into the Caribbean is along northeast-striking transforms, one of which coincided with the eastern margin of the Yucatán Peninsula. The transform appears to link the Motagua suture to the Pinar del Rio Province of western Cuba. To the southeast, the arc was transected by a second transform, perhaps coinciding with the present trace of the Romeral fault in northwestern South America and extending northeast to the eastern terminus of the Virgin Islands. During Late Cretaceous convergence, a segment of the extinct Early Cretaceous arc, developed at the Pacific margin, was carried northeastward.