Paleoenvironmental Conditions and Factors Controlling Organic Carbon Accumulation during the Jurassic–Early Cretaceous, Egypt: Organic and Inorganic Geochemical Approach
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[1] Guoqing Xia,et al. Paleoenvironmental changes during the early Toarcian Oceanic Anoxic Event: Insights into organic carbon distribution and controlling mechanisms in the eastern Tethys , 2022, Journal of Asian Earth Sciences.
[2] M. Wagreich,et al. Earth system changes during the cooling greenhouse phase of the Late Cretaceous: Coniacian-Santonian OAE3 subevents and fundamental variations in organic carbon deposition , 2022, Earth-Science Reviews.
[3] M. Wagreich,et al. Climate variability and paleoceanography during the Late Cretaceous: Evidence from palynology, geochemistry and stable isotopes analyses from the southern Tethys , 2021 .
[4] O. Catuneanu,et al. Sequence stratigraphy in organic-rich marine mudstone successions using chemostratigraphic datasets , 2020 .
[5] E. Geršlová,et al. Hydrocarbon potential and depositional paleoenvironment of a Middle Jurassic succession in the Falak-21 well, Shushan Basin, Egypt: Integrated palynological, geochemical and organic petrographic approach , 2020 .
[6] T. Gentzis,et al. Multi-proxy approach to screen the hydrocarbon potential of the Jurassic succession in the Matruh Basin, North Western Desert, Egypt , 2017 .
[7] Rushdi Said. Cretaceous paleogeographic maps , 2017 .
[8] C. E. Rezende,et al. Barium and its Importance as an Indicator of (Paleo)Productivity. , 2016, Anais da Academia Brasileira de Ciencias.
[9] N. S. Mohamed,et al. Geochemical and biomarker characteristics of crude oils and source rock hydrocarbon extracts: An implication to their correlation, depositional environment and maturation in the Northern Western Desert, Egypt , 2016 .
[10] R. Littke,et al. Source rock evaluation and nature of hydrocarbons in the Khalda Concession, Shushan Basin, Egypt's Western Desert , 2016 .
[11] E. Ingall,et al. Total organic carbon, organic phosphorus, and biogenic barium fluxes as proxies for paleomarine productivity , 2015 .
[12] J. Bouchez,et al. Riverine Li isotope fractionation in the Amazon River basin controlled by the weathering regimes , 2015 .
[13] J. Bouchez,et al. How accurate are rivers as gauges of chemical denudation of the Earth surface , 2014 .
[14] Min-Te Chen,et al. The Ti/Al molar ratio as a new proxy for tracing sediment transportation processes and its application in aeolian events and sea level change in East Asia , 2013 .
[15] B. Jørgensen,et al. Quantifying the degradation of organic matter in marine sediments: A review and synthesis , 2013 .
[16] Mohamed K. Zobaa,et al. Jurassic–Cretaceous palynomorphs, palynofacies, and petroleum potential of the Sharib-1X and Ghoroud-1X wells, north Western Desert, Egypt , 2013 .
[17] T. Wagner,et al. Clay mineral continental amplifier for marine carbon sequestration in a greenhouse ocean , 2011, Proceedings of the National Academy of Sciences.
[18] J. Damsté,et al. Warm Middle Jurassic–Early Cretaceous high-latitude sea-surface temperatures from the Southern Ocean , 2011 .
[19] Chuanming Zhou,et al. Palaeoceanographic redox environments for the lower Cambrian Hetang Formation in South China: Evidence from pyrite framboids, redox sensitive trace elements, and sponge biota occurrence , 2009 .
[20] K. Föllmi,et al. Phosphorus and the roles of productivity and nutrient recycling during oceanic anoxic event 2 , 2007 .
[21] T. Lyons,et al. Trace metals as paleoredox and paleoproductivity proxies: An update , 2006 .
[22] T. Lyons,et al. Organic carbon burial rate and the molybdenum proxy: Theoretical framework and application to Cenomanian-Turonian oceanic anoxic event 2 , 2005 .
[23] T. Lyons,et al. Sediment carbon, nitrogen and phosphorus cycling in an anoxic fjord, Effingham Inlet, British Columbia , 2005 .
[24] B. Niebuhr. Geochemistry and time-series analyses of orbitally forced Upper Cretaceous marl–limestone rhythmites (Lehrte West Syncline, northern Germany) , 2005, Geological Magazine.
[25] D. Wray,et al. An example of alternative correlation techniques in a low-accommodation setting, nonmarine hydrocarbon system: The (Lower Cretaceous) Mannville Basal Quartz succession of southern Alberta , 2004 .
[26] J. B. Maynard,et al. Trace-element behavior and redox facies in core shales of Upper Pennsylvanian Kansas-type cyclothems , 2004 .
[27] G. Lange,et al. Biogenic barium and the detrital Ba/Al ratio: a comparison of their direct and indirect determination , 2004 .
[28] G. Dromart,et al. Ice age at the Middle–Late Jurassic transition? , 2003 .
[29] M. Böttcher,et al. Barium as a productivity proxy in continental margin sediments: a study from the eastern Arabian Sea , 2002 .
[30] N. Harris,et al. Geochemical facies analysis of fine-grained siliciclastics using Th/U, Zr/Rb and (Zr+Rb)/Sr ratios , 2001 .
[31] S. Kasten,et al. Barium peaks at glacial terminations in sediments of the equatorial Atlantic Ocean—relicts of deglacial productivity pulses? , 2001 .
[32] R. Tyson. Sedimentation rate, dilution, preservation and total organic carbon: some results of a modelling study , 2001 .
[33] K. Johnson,et al. Geochemistry of barium in marine sediments: implications for its use as a paleoproxy , 1998 .
[34] P. Fralick,et al. Geochemical discrimination of clastic sedimentary rock sources , 1997 .
[35] H. Weissert,et al. Late Jurassic climate and its impact on carbon cycling , 1996 .
[36] W. Ricken. Bedding rhythms and cyclic sequences as documented in organic carbon-carbonate patterns, Upper Cretaceous, Western Interior, U.S. , 1996 .
[37] P. Kubik,et al. 10Be and Ba concentrations in West African sediments trace productivity in the past , 1995 .
[38] D. Canfield,et al. Factors influencing organic carbon preservation in marine sediments. , 1994, Chemical geology.
[39] D. Manning,et al. Comparison of geochemical indices used for the interpretation of palaeoredox conditions in ancient mudstones , 1994 .
[40] J. Leventhal,et al. Relationship between inferred redox potential of the depositional environment and geochemistry of the Upper Pennsylvanian (Missourian) Stark Shale Member of the Dennis Limestone, Wabaunsee County, Kansas, U.S.A. , 1992 .
[41] E. Ripley,et al. Distribution and geochemical characteristics of metal enrichment in the New Albany Shale (Devonian-Mississippian), Indiana , 1990 .
[42] D. Shaw,et al. THE JURASSIC SYSTEM IN NORTHERN EGYPT: I. Regional stratigraphy and implications for hydrocarbon prospectivity , 1990 .
[43] M. Lewan. Factors controlling the proportionality of vanadium to nickel in crude oils , 1984 .
[44] Robert Raiswell,et al. Burial of organic carbon and pyrite sulfur in sediments over phanerozoic time: a new theory , 1983 .
[45] M. German,et al. The Karbonat-Bombe, a simple device for the determination of the carbonate content in sediments, soils, and other materials , 1971 .
[46] Mesozoic , 2021, Encyclopedic Dictionary of Archaeology.
[47] W. Abdullah,et al. Modeling of gas generation from the Alam El-Bueib formation in the Shoushan Basin, northern Western Desert of Egypt , 2012, International Journal of Earth Sciences.
[48] K. Ratcliffe,et al. Unconventional Methods For Unconventional Plays: Using Elemental Data To Understand Shale Resource Plays , 2012 .
[49] T. Blackburn,et al. ANAEROBIC MINERALIZATION OF MARINE SEDIMENT ORGANIC-MATTER - RATES AND THE ROLE OF ANAEROBIC PROCESSES IN THE OCEANIC CARBON ECONOMY , 2006 .
[50] R. Guiraud. Mesozoic rifting and basin inversion along the northern African Tethyan margin: an overview , 1998, Geological Society, London, Special Publications.
[51] R. Guiraud,et al. Paleogeography and Paleoenvironment of the Tethyan Realm During the Jurassic Breakup of Pangea , 1995 .
[52] R. Guiraud,et al. Late Carboniferous to Recent, Geodynamic Evolution of the West Gondwanian, Cratonic, Tethyan Margins , 1995 .
[53] D. K. McDaniel,et al. Geochemical approaches to sedimentation, provenance, and tectonics , 1993 .
[54] S. O. Schlanger,et al. STRONTIUM STORAGE AND RELEASE DURING DEPOSITION AND DIAGENESIS OF MARINE CARBONATES RELATED TO SEA-LEVEL VARIATIONS , 1988 .
[55] M. Meybeck,et al. Physical and chemical weathering in geochemical cycles , 1988 .
[56] W. Reeburgh,et al. Anaerobic mineralization of marine sediment organic matter: Rates and the role of anaerobic processes in the oceanic carbon economy , 1987 .
[57] S. Taylor,et al. The continental crust: Its composition and evolution , 1985 .