Validating the rhenium proxy for rock organic carbon oxidation using weathering profiles.

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Title: Validating the rhenium proxy for rock organic carbon oxidation using weathering profiles.
Authors: Grant, Katherine E.1,2 (AUTHOR) grant39@llnl.gov, Dellinger, Mathieu2,3 (AUTHOR), Dickson, Alexander J.4 (AUTHOR), Ogric, Mateja2 (AUTHOR), Horan, Kate2 (AUTHOR), Petsch, Steven5 (AUTHOR), Hilton, Robert G.1,6 (AUTHOR) robert.hilton@earth.ox.ac.uk
Source: Chemical Geology. Jan2025, Vol. 671, pN.PAG-N.PAG. 1p.
Subjects: Atmospheric carbon dioxide, Carbon dioxide sinks, Surface of the earth, Weathering, Geochemical cycles, Chemical weathering
Abstract: Chemical weathering over geological timescales acts as a source or sink of atmospheric carbon dioxide (CO 2), while influencing long-term redox cycling and atmospheric oxygen (O 2) at Earth's surface. There is a growing recognition that the oxidative weathering of rock organic carbon (OC petro) can release more CO 2 than is locally drawn down by silicate weathering, and may vary due to changes in erosion and climate. The element rhenium (Re) has emerged as a proxy to track the oxidative weathering of OC petro , yet uncertainties in its application remain namely that we lack a systematic assessment of the comparative mobility of Re and OC petro during sedimentary rock weathering. Here we measure Re and OC petro loss across gradients in rock weathering at 9 global sites, spanning a range of initial OC petro values from ∼0.2 % to >10 %. We use titanium to account for volume changes during weathering and assess Re and OC petro loss alongside major elements that reflect silicate (Na, Mg), carbonate (Ca, Mg) and sulfide (S) weathering. Across the dataset, Re loss is correlated with OC petro loss but not with loss of any other major element. Across the weathering profiles, the average molar ratio of OC petro to Re loss was 0.84 ± 0.15, with 8 out of 9 sites having a ratio >0.74. At one site (Marcellus Shale), the average ratio was lower at 0.58 ± 0.11. The excess loss of Re matches expectations that, typically, between ∼0 and 20 % of the Re liberated by sedimentary rock weathering derives from silicate or sulfide phases, while some OC petro may be physically or chemically protected from weathering. Overall, our measurements provide validation for the Re proxy of OC petro oxidation and allow future work to further improve our knowledge of regional and global-scale rates of this important source of CO 2 in the geochemical carbon cycle. [ABSTRACT FROM AUTHOR]
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Database: Engineering Source
Description
Abstract:Chemical weathering over geological timescales acts as a source or sink of atmospheric carbon dioxide (CO 2), while influencing long-term redox cycling and atmospheric oxygen (O 2) at Earth's surface. There is a growing recognition that the oxidative weathering of rock organic carbon (OC petro) can release more CO 2 than is locally drawn down by silicate weathering, and may vary due to changes in erosion and climate. The element rhenium (Re) has emerged as a proxy to track the oxidative weathering of OC petro , yet uncertainties in its application remain namely that we lack a systematic assessment of the comparative mobility of Re and OC petro during sedimentary rock weathering. Here we measure Re and OC petro loss across gradients in rock weathering at 9 global sites, spanning a range of initial OC petro values from ∼0.2 % to >10 %. We use titanium to account for volume changes during weathering and assess Re and OC petro loss alongside major elements that reflect silicate (Na, Mg), carbonate (Ca, Mg) and sulfide (S) weathering. Across the dataset, Re loss is correlated with OC petro loss but not with loss of any other major element. Across the weathering profiles, the average molar ratio of OC petro to Re loss was 0.84 ± 0.15, with 8 out of 9 sites having a ratio >0.74. At one site (Marcellus Shale), the average ratio was lower at 0.58 ± 0.11. The excess loss of Re matches expectations that, typically, between ∼0 and 20 % of the Re liberated by sedimentary rock weathering derives from silicate or sulfide phases, while some OC petro may be physically or chemically protected from weathering. Overall, our measurements provide validation for the Re proxy of OC petro oxidation and allow future work to further improve our knowledge of regional and global-scale rates of this important source of CO 2 in the geochemical carbon cycle. [ABSTRACT FROM AUTHOR]
ISSN:00092541
DOI:10.1016/j.chemgeo.2024.122464