Genesis and Distribution of Pyrite in the Lacustrine Shale: Evidence from the Es3x Shale of the Eocene Shahejie Formation, Zhanhua Sag, East China
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K. Mirza | C. Liang | L. Qiu | M. Kashif | Saif-ur- Rehman | D. Khan | Yu Han | Kouassi Louis Kra | Abdul Hannan
[1] Bing Zhang,et al. Geochemical characteristics of organic carbon and pyrite sulfur in Ordovician-Silurian transition shales in the Yangtze Platform, South China: Implications for the depositional environment , 2020, Palaeogeography, Palaeoclimatology, Palaeoecology.
[2] Shenghe Wu,et al. The origins of carbonate minerals of a source-controlled lacustrine carbonate succession in the Shulu sag, Bohai Bay Basin: Implications for porosity development and paleoenvironment , 2020 .
[3] Guangdi Liu,et al. Variations in hydrocarbon generating potential of the Chang 7 shale: Evidence from pyrite morphology and sulfur isotope , 2020 .
[4] Wen Zhou,et al. Statistical analysis and significance of pyrite in the Wufeng-Lower Longmaxi Shale Formation in South China , 2020, Arabian Journal of Geosciences.
[5] T. Algeo,et al. Redox classification and calibration of redox thresholds in sedimentary systems , 2020 .
[6] T. Al,et al. Diagenetic evolution of a sedimentary system (Michigan Basin): Insights from petrography and S-isotope micro-analysis of pyrite , 2020 .
[7] M. Wagreich,et al. Depositional and organic carbon-controlled regimes during the Coniacian-Santonian event: First results from the southern Tethys (Egypt) , 2020 .
[8] Z. Pan,et al. Effect of thermal maturity on shale pore structure: A combined study using extracted organic matter and bulk shale from Sichuan Basin, China , 2020 .
[9] C. Hefferan,et al. Diagenetic Pyrite Morphology in Mudstones of the Upper Ordovician Point Pleasant Limestone, Appalachian Basin: Evidence for Dysoxic Deposition , 2020, Memoir 120: Mudstone Diagenesis: Research Perspectives for Shale Hydrocarbon Reservoirs, Seals, and Source Rocks.
[10] Dongxia Chen,et al. Pyrite Morphology as an Indicator of Paleoredox Conditions and Shale Gas Content of the Longmaxi and Wufeng Shales in the Middle Yangtze Area, South China , 2019, Minerals.
[11] C. Liang,et al. Shale oil reservoir characteristics and enrichment in the Jiyang depression, Bohai Bay Basin, East China , 2017, Journal of Earth Science.
[12] Huyue Song,et al. Redox conditions across the G–L boundary in South China: Evidence from pyrite morphology and sulfur isotopic compositions , 2016 .
[13] Li Peng,et al. Climate-driven paleolimnological change controls lacustrine mudstone depositional process and organic matter accumulation: Constraints from lithofacies and geochemical studies in the Zhanhua Depression, eastern China , 2016 .
[14] H. Sanei,et al. Effect of thermal maturity on remobilization of molybdenum in black shales , 2016 .
[15] Jianhua He,et al. Logging identification and characteristic analysis of the lacustrine organic-rich shale lithofacies- A case study from the ES3L shale in the Jiyang Depression, Bohai Bay Basin, Eastern China , 2016 .
[16] Dongfeng Hu,et al. Paleo-ocean redox environments of the Upper Ordovician Wufeng and the first member in lower Silurian Longmaxi formations in the Jiaoshiba area, Sichuan Basin , 2016 .
[17] Liao Cha. Shale Reservoir Characteristics of the Lower 3th Member of Shahejie Formation,Luojia Area,Zhanhua Sag , 2015 .
[18] X. Pang,et al. Meso-cenozoic tectono-thermal evolution history in Bohai Bay Basin, North China , 2015, Journal of Earth Science.
[19] Wang Hong-shen. Analysis of Influence Factors of Shale Oil Formation in Zhanhua Depression of Bohai Bay Basin , 2014 .
[20] Zhu Xiaomi. On the Differences of Reservoir Quality of Shahejie Fm. in Steep Slope Zones of Jiyang Sag , 2013 .
[21] Hua Wang,et al. Genetic types and sequence stratigraphy models of Palaeogene slope break belts in Qikou Sag, Huanghua Depression, Bohai Bay Basin, Eastern China , 2012 .
[22] Fang Hao,et al. Lacustrine source rock deposition in response to co-evolution of environments and organisms controlled by tectonic subsidence and climate, Bohai Bay Basin, China , 2011 .
[23] Stephen C. Ruppel,et al. Mississippian Barnett Shale: Lithofacies and depositional setting of a deep-water shale-gas succession in the Fort Worth Basin, Texas , 2007 .
[24] Zhongze Liu,et al. The Cenozoic Tectono-Thermal Evolution of Jiyang Depression, Bohai Bay Basin, East China , 2006 .
[25] D. Rickard,et al. Experimental syntheses of framboids—a review , 2005 .
[26] P. Wignall,et al. Pyrite framboid evidence for oxygen-poor deposition during the Permian-Triassic crisis in Kashmir , 2005 .
[27] S. M. Rimmer. Geochemical paleoredox indicators in Devonian–Mississippian black shales, Central Appalachian Basin (USA) , 2004 .
[28] P. Wignall,et al. Extent and duration of marine anoxia during the Frasnian–Famennian (Late Devonian) mass extinction in Poland, Germany, Austria and France , 2004, Geological Magazine.
[29] M. Schoonen. Mechanisms of sedimentary pyrite formation , 2004 .
[30] R. Wilkin,et al. Variations in pyrite texture, sulfur isotope composition, and iron systematics in the Black Sea: evidence for Late Pleistocene to Holocene excursions of the o , 2001 .
[31] R. Parkes,et al. Understanding fossilization: Experimental pyritization of plants , 2001 .
[32] Z. Sawłowicz,et al. Framboids : from their origin to application , 2000 .
[33] R. Wilkin,et al. Pyrite formation in the water column and sediments of a meromictic lake , 1998 .
[34] P. Wignall,et al. Pyrite framboid diameter as a measure of oxygen deficiency in ancient mudrocks , 1998 .
[35] D. Macdonald,et al. Early Cenozoic two-phase extension and late Cenozoic thermal subsidence and inversion of the Bohai Basin, northern China , 1997 .
[36] H. Barnes,et al. Formation processes of framboidal pyrite , 1997 .
[37] H. Barnes,et al. Pyrite formation by reactions of iron monosulfides with dissolved inorganic and organic sulfur species , 1996 .
[38] H. Barnes,et al. THE SIZE DISTRIBUTION OF FRAMBOIDAL PYRITE IN MODERN SEDIMENTS : AN INDICATOR OF REDOX CONDITIONS , 1996 .
[39] Z. Sawłowicz,et al. Pyrite framboids and their development: a new conceptual mechanism , 1993 .
[40] Z. Sawłowicz. Organic Matter and its Significance for the Genesis of the Copper-Bearing Shales (Kupferschiefer) from the Fore-Sudetic Monocline (Poland) , 1993 .
[41] M. Schoonen,et al. Reactions forming pyrite and marcasite from solution: I. Nucleation of FeS2 below 100°C , 1991 .
[42] R. Berner. Sedimentary pyrite formation: An update , 1984 .
[43] R. Howarth,et al. Porewater evidence for a dynamic sedimentary iron cycle in salt marshes. [Spartina alterniflora] , 1984 .
[44] I. Kaplan,et al. Pyrite Framboid Formation; Laboratory Synthesis and Marine Sediments , 1973 .
[45] E. R. Allen,et al. The Sulfur Cycle , 1972, Science.
[46] K. H. Wedepohl. Environmental influences on the chemical composition of shales and clays , 1971 .
[47] D. Rickard,et al. The origin of framboids , 1970 .
[48] R. Berner. The synthesis of framboidal pyrite , 1969 .
[49] J. Murray,et al. Biogenic pyrite in recent sediments of Christchurch harbour, England , 1963 .
[50] L. G. Love. Biogenic primary sulfide of the Permian Kupferschiefer and Marl Slate , 1962 .
[51] L. G. Love. Mircro-organisms and the presence of syngenetic pyrite , 1957, Quarterly Journal of the Geological Society of London.