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- W2059281650 abstract "Successful application of the 187Re–187Os geochronometer has enabled the determination of accurate and precise depositional ages for organic-rich sedimentary rocks (ORS) as well as establishing timing constraints of petroleum generation. However, we do not fully understand the systematics and transfer behaviour of Re and Os between ORS and petroleum products (e.g., bitumen and oil). To more fully understand the behaviour of Re–Os systematics in both source rocks and petroleum products we apply hydrous pyrolysis to two immature hydrocarbon source rocks: the Permian Phosphoria Formation (TOC = 17.4%; Type II-S kerogen) and the Jurassic Staffin Formation (TOC = 2.5%; Type III kerogen). The laboratory-based hydrous pyrolysis experiments were carried out for 72 h at 250, 300, 325 and 350 °C. These experiments provided us with whole rock, extracted rock and bitumen and in some cases expelled oil and asphaltene for evaluation of Re–Os isotopic and elemental abundance. The data from these experiments demonstrate that the majority (>95%) of Re and Os are housed within extracted rock and that thermal maturation does not result in significant transfer of Re or Os from the extracted rock into organic phases. Based on existing thermodynamic data our findings suggest that organic chelating sites have a greater affinity for the quadravalent states of Re and Os than sulphides. Across the temperature range of the hydrous pyrolysis experiments both whole rock and extracted rock 187Re/188Os ratios show small variations (3.3% and 4.7%, for Staffin, respectively and 6.3% and 4.9% for Phosphoria, respectively). Similarly, the 187Os/188Os ratios show only minor variations for the Staffin and Phosphoria whole rock and extracted rock samples (0.6% and 1.4% and 1.3% and 2.2%). These isotopic data strongly suggest that crude oil generation through hydrous pyrolysis experiments does not disturb the Re–Os systematics in ORS as supported by various studies on natural systems. The elemental abundance data reveal limited transfer of Re and Os into the bitumen from a Type III kerogen in comparison to Type II-S kerogen (0.02% vs. 3.7%), suggesting that these metals are very tightly bound in Type III kerogen structure. The 187Os/188Os data from the pyrolysis generated Phosphoria bitumens display minor variation (4%) across the experimental temperatures, with values similar to that of the source rock. This indicates that the isotopic composition of the bitumen reflects the isotopic composition of the source rock at the time of petroleum generation. These data further support the premise that the Os isotopic composition of oils and bitumens can be used to fingerprint petroleum deposits to specific source rocks. Oil generated through the hydrous pyrolysis experiments does not contain appreciable quantities of Re or Os (∼120 and ∼3 ppt, respectively), in contrast to natural oils (2–50 ppb and 34–288 ppt for Re and Os, respectively), which may suggest that kinetic parameters are fundamental to the transfer of Re and Os from source rocks to oils. From this we hypothesise that, at the temperatures employed in hydrous pyrolysis, Re and Os are assimilated into the extracted rock as a result of cross-linking reactions." @default.
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- W2059281650 date "2012-01-01" @default.
- W2059281650 modified "2023-10-09" @default.
- W2059281650 title "Evaluating Re–Os systematics in organic-rich sedimentary rocks in response to petroleum generation using hydrous pyrolysis experiments" @default.
- W2059281650 cites W113239123 @default.
- W2059281650 cites W1498344923 @default.
- W2059281650 cites W153578786 @default.
- W2059281650 cites W1656751160 @default.
- W2059281650 cites W1963487805 @default.
- W2059281650 cites W1965658808 @default.
- W2059281650 cites W1973861777 @default.
- W2059281650 cites W1974182283 @default.
- W2059281650 cites W1975383369 @default.
- W2059281650 cites W1981259692 @default.
- W2059281650 cites W1982705746 @default.
- W2059281650 cites W1988806251 @default.
- W2059281650 cites W1989781557 @default.
- W2059281650 cites W1990004051 @default.
- W2059281650 cites W1991044800 @default.
- W2059281650 cites W1998680662 @default.
- W2059281650 cites W2001120387 @default.
- W2059281650 cites W2005887772 @default.
- W2059281650 cites W2006265140 @default.
- W2059281650 cites W2007617314 @default.
- W2059281650 cites W2012788967 @default.
- W2059281650 cites W2017935781 @default.
- W2059281650 cites W2018696647 @default.
- W2059281650 cites W2021112336 @default.
- W2059281650 cites W2029901170 @default.
- W2059281650 cites W2033466627 @default.
- W2059281650 cites W2034760595 @default.
- W2059281650 cites W2038083256 @default.
- W2059281650 cites W2039596958 @default.
- W2059281650 cites W2053467447 @default.
- W2059281650 cites W2055862951 @default.
- W2059281650 cites W2059075068 @default.
- W2059281650 cites W2059333603 @default.
- W2059281650 cites W2064306021 @default.
- W2059281650 cites W2065634395 @default.
- W2059281650 cites W2078725207 @default.
- W2059281650 cites W2081314412 @default.
- W2059281650 cites W2084725290 @default.
- W2059281650 cites W2086333997 @default.
- W2059281650 cites W2087272845 @default.
- W2059281650 cites W2088196042 @default.
- W2059281650 cites W2091510530 @default.
- W2059281650 cites W2098954759 @default.
- W2059281650 cites W2100951683 @default.
- W2059281650 cites W2112797646 @default.
- W2059281650 cites W2119855749 @default.
- W2059281650 cites W2120836329 @default.
- W2059281650 cites W2135544182 @default.
- W2059281650 cites W2136348758 @default.
- W2059281650 cites W2136659112 @default.
- W2059281650 cites W2148857787 @default.
- W2059281650 cites W2149352936 @default.
- W2059281650 cites W2159280067 @default.
- W2059281650 cites W2247945756 @default.
- W2059281650 cites W2319574445 @default.
- W2059281650 cites W2327257247 @default.
- W2059281650 cites W2605631931 @default.
- W2059281650 cites W2886736699 @default.
- W2059281650 cites W3022095804 @default.
- W2059281650 cites W3115861060 @default.
- W2059281650 cites W4205550164 @default.
- W2059281650 doi "https://doi.org/10.1016/j.gca.2011.11.006" @default.
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