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all geography including DSDP/ODP Sites and Legs
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Arctic Ocean
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Alpha Cordillera (1)
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Amerasia Basin (1)
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Beaufort Sea (6)
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Makarov Basin (1)
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Arctic region
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Arctic Coastal Plain (1)
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Asia
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Anadyr Basin (1)
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Chukotka Russian Federation
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Chukchi Peninsula (1)
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Far East
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China
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Indonesia
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Sumatra (2)
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Japan
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Himalayas (2)
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Indian Peninsula
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Kamchatka Russian Federation
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Komandorski Islands (3)
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Koryak Range (2)
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Middle East
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Iran (1)
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Turkey (1)
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Okhotsk-Chukchi volcanic belt (1)
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Russian Far East (2)
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Russian Pacific region (12)
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Sakhalin Russian Federation
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Kuril Islands (4)
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Sakhalin (1)
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Siberia (1)
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Atlantic Ocean
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Mid-Atlantic Ridge (1)
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North Atlantic
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Oceanographer fracture zone (1)
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South Atlantic
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Australasia
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Cascade Range (1)
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Central America
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Nicaragua (1)
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Commonwealth of Independent States
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Russian Federation
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Chukotka Russian Federation
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Kamchatka Russian Federation
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Komandorski Islands (3)
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Koryak Range (2)
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Okhotsk-Chukchi volcanic belt (1)
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Sakhalin Russian Federation
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Cook Inlet (2)
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Oceania
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Micronesia
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Polynesia
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Hawaii
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Tonga (4)
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Pacific Coast (1)
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Pacific Ocean
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Northeast Pacific
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Southeast Pacific
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Equatorial Pacific (1)
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Northeast Pacific
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Northwest Pacific
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West Pacific
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Pacific region
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United States
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carbon
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stable isotopes
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copper (1)
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lead
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Pb-207/Pb-204 (1)
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nickel (1)
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platinum group
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palladium ores (1)
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rare earths
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dysprosium (1)
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lanthanum (2)
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neodymium
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Nd-144/Nd-143 (4)
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samarium (1)
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zirconium (1)
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oxygen
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O-18/O-16 (2)
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fossils
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burrows (1)
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Chordata
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Vertebrata
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Tetrapoda
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Mammalia
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Invertebrata
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Protista
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Radiolaria (2)
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microfossils
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pollen (1)
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Plantae
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thallophytes (1)
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upper Tertiary (1)
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sheet silicates
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clay minerals
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Primary terms
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absolute age (17)
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Canada Basin (1)
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Chukchi Sea (6)
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East Siberian Sea (1)
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Kara Sea (1)
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Laptev Sea (1)
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Lomonosov Ridge (1)
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Makarov Basin (1)
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Arctic region
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Asia
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Anadyr Basin (1)
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Chukotka Russian Federation
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Chukchi Peninsula (1)
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Far East
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China
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Sichuan China (1)
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Yangtze Three Gorges (1)
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Indonesia
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Japan
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Hokkaido (1)
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Philippine Islands (2)
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Koryak Range (2)
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GeoRef Categories
Era and Period
Epoch and Age
Book Series
Date
Availability
Generalized Bancroft Algorithm for Locating Earthquakes with P ‐ and S ‐Wave Arrival Times Available to Purchase
Boron isotopes identify deep-slab serpentinite in the source of Aleutian arc magma Open Access
Fault–Dike–Magma Interactions Inferred from Transcrustal Conical Structures under Akutan Volcano Available to Purchase
DMLoc: Automatic Microseismic Locating Workflow Based on Deep Learning and Waveform Migration Available to Purchase
Investigation into the Multistage Mechanical Damage Behavior of Columnar Jointed Basalts with Different Meso-Constitutive Relations and Model Sizes Open Access
Back‐Azimuth Estimation of Air‐to‐Ground Coupled Infrasound from Transverse Coherence Minimization Open Access
Equilibration depth and temperature of Neogene alkaline lavas in the Cordillera of Alaska and Canada as a constraint on the lithosphere–asthenosphere boundary Available to Purchase
Detrital glass in a Bering Sea sediment core yields a ca. 160 ka Marine Isotope Stage 6 age for Old Crow tephra Open Access
Gamma-ray attenuation bulk density as an indicator of diatom valve abundance and fragmentation in Pleistocene biosiliceous sediments of the Bering Sea Available to Purchase
ABSTRACT Multisensor track measurements are a nondestructive method to produce continuously measured high-resolution physical property data sets that are a great asset to a wide range of research, including geotechnical studies and paleoceanography. Interpretation of these physical property data can be challenging because they are typically influenced by multiple variables. This paper specifically focuses on the interpretation of gamma-ray attenuation (GRA) data (a proxy for sediment bulk density) in biosiliceous sediments. The Bering Sea is a basin dominated by biosiliceous sediment, and the late Pleistocene to present core record of Sites U1340 and U1339, drilled during Integrated Ocean Drilling Program (IODP) Expedition 323, has subtle meter-scale changes in the concentration of fine-grained siliciclastic sediment that produce lithologic alternations between diatom ooze and diatom mud. We produced a detailed sedimentologic data set that combined smear slide petrography, scanning electron microscopy, and grain-size analysis for both Sites U1340 and U1339 and correlated it to shipboard GRA bulk density measurements. Results show that bulk density is negatively correlated with diatom abundance and positively correlated with the fragmentation of diatom valves. This study argues that diatom abundance and fragmentation influence sediment packing and drive down-core variability in GRA bulk density. Therefore, denser diatom mud is a result of tightly packed, highly fragmented diatom valves, and diatom ooze is a less dense sediment dominated by whole and less fragmented diatom valves. We suggest that GRA data can be used as a proxy for diatom abundance and an indicator of diatom fragmentation. We include a discussion of how these results may impact the interpretation of ancient bedded siliceous rocks.
Bolide Energetics and Infrasound Propagation: Exploring the 18 December 2018 Bering Sea Event to Identify Limitations of Empirical and Numerical Models Open Access
Identification of gas hydrates and bottom-simulating reflectors in far-offset seismic images Available to Purchase
Great Pending Himalaya Earthquakes Available to Purchase
Experimental constraints on the partial melting of sediment-metasomatized lithospheric mantle in subduction zones Available to Purchase
Columnar-jointed bentonite below a Doleritic Sill, Tideswell Dale, Derbyshire, UK: formation during prograde contact metamorphism Available to Purchase
Goals and Development of the Alaska Volcano Observatory Seismic Network and Application to Forecasting and Detecting Volcanic Eruptions Available to Purchase
Recent density decline in wild-collected subarctic crustose coralline algae reveals climate change signature Available to Purchase
The robustness of Sr/Y and La/Yb as proxies for crust thickness in modern arcs Open Access
Gravity field, surface topography, and volcanic complexes of Kamchatka and its junction with the Aleutian arc Available to Purchase
Circum-Arctic Lithosphere Evolution (CALE) Transect C: displacement of the Arctic Alaska–Chukotka microplate towards the Pacific during opening of the Amerasia Basin of the Arctic Available to Purchase
Abstract This paper synthesizes the framework and geological evolution of the Arctic Alaska–Chukotka microplate (AACM), from its origin as part of the continental platform fringing Baltica and Laurentia to its southward motion during the formation of the Amerasia Basin (Arctic Ocean) and its progressive modification as part of the dynamic northern palaeo-Pacific margin. A synthesis of the available data refines the crustal identity, limits and history of the AACM and, together with regional geological constraints, provides a tectonic framework to aid in its pre-Cretaceous restoration. Recently published seismic reflection data and interpretations, integrated with regional geological constraints, provide the basis for a new crustal transect (the Circum-Arctic Lithosphere Evolution (‘CALE’) Transect C) linking the Amerasia Basin and the Pacific margin along two paths that span 5100 km from the Lomonosov Ridge (near the North Pole), across the Amerasia Basin, Chukchi Sea and Bering Sea, and ending at the subducting Pacific plate margin in the Aleutian Islands. We propose a new plate tectonic model in which the AACM originated as part of a re-entrant in the palaeo-Pacific margin and moved to its present position during slab-related magmatism and the southward retreat of palaeo-Pacific subduction, largely coeval with the rifting and formation of the Amerasia Basin in its wake. Supplementary material: Supplementary material Plate 1 (herein referred to as Sup. Pl. 1) comprises Plate 1 and its included figures, which are an integral part of this paper. Plate 1 contains regional reflection-seismic-based cross sections and supporting material that collectively constitute CALE Transects C1 and C2 and form an important part of our contribution. Plate 1 is referred to in the text as Sup. Pl. 1, Transects C1 and C2 as Plate 1A and 1B, and plate figures as fig. P1.1, fig. P1.2, etc.). Supplementary material 2 contains previously unpublished geochronologic data on detrital zircon suites and igneous rocks. Supplementary material are available at https://doi.org/10.6084/m9.figshare.c.3826813