Ca isotope stratigraphy across the Cenomanian-Turonian OAE 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor.

The Ca isotope composition of marine carbonate rocks offers potential to reconstruct drivers of environmental change in the geologic past. This study reports new, high-precision Ca isotope records (View the MathML source; 2σSD=±0.04‰) for three sections spanning a major perturbation to the Cretaceou...

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Published in:Earth and Planetary Science Letters
Main Authors: Du Vivier, Alice D. C., Jacobson, Andrew D., Lehn, Gregory O., Selby, David, Hurtgen, Matthew T., Sageman, Bradley B.
Format: Article in Journal/Newspaper
Language:unknown
Published: Elsevier 2015
Subjects:
Online Access:http://dro.dur.ac.uk/14521/
http://dro.dur.ac.uk/14521/1/14521.pdf
https://doi.org/10.1016/j.epsl.2015.02.001
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spelling ftunivdurham:oai:dro.dur.ac.uk.OAI2:14521 2023-05-15T17:52:11+02:00 Ca isotope stratigraphy across the Cenomanian-Turonian OAE 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor. Du Vivier, Alice D. C. Jacobson, Andrew D. Lehn, Gregory O. Selby, David Hurtgen, Matthew T. Sageman, Bradley B. 2015-04-15 application/pdf http://dro.dur.ac.uk/14521/ http://dro.dur.ac.uk/14521/1/14521.pdf https://doi.org/10.1016/j.epsl.2015.02.001 unknown Elsevier dro:14521 issn:0012-821X doi:10.1016/j.epsl.2015.02.001 http://dro.dur.ac.uk/14521/ http://dx.doi.org/10.1016/j.epsl.2015.02.001 http://dro.dur.ac.uk/14521/1/14521.pdf © 2015 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/). CC-BY Earth and planetary science letters, 2015, Vol.416, pp.121-131 [Peer Reviewed Journal] Article PeerReviewed 2015 ftunivdurham https://doi.org/10.1016/j.epsl.2015.02.001 2020-05-28T22:31:10Z The Ca isotope composition of marine carbonate rocks offers potential to reconstruct drivers of environmental change in the geologic past. This study reports new, high-precision Ca isotope records (View the MathML source; 2σSD=±0.04‰) for three sections spanning a major perturbation to the Cretaceous ocean-climate system known as Ocean Anoxic Event 2 (OAE 2): central Colorado, USA (Portland #1 core), southeastern France (Pont d'Issole), and Hokkaido, Japan (Oyubari, Yezo Group). In addition, we generated new data for selected samples from Eastbourne, England (English Chalk), where a previous Ca isotope study was completed using different methodology (Blättler et al., 2011). Strata of the Yezo Group contain little carbonate (∼1 wt.% on average) and accordingly did not yield a clear View the MathML source signal. The Portland core and the Pont d'Issole section display comparable View the MathML source values, which increase by ∼0.10–0.15‰ at the onset of OAE 2 and then decrease to near-initial values across the event. The Eastbourne View the MathML source values are higher than previously reported. They are also higher than the View the MathML source values for the Portland core and the Pont d'Issole section but define a similar pattern. According to a numerical model of the marine Ca cycle, elevated hydrothermal inputs have little impact on seawater View the MathML source values. Elevated riverine (chemical weathering) inputs produce a transient negative isotope excursion, which significantly differs from the positive isotope excursions observed in the Portland, Pont d'Issole, and Eastbourne records. A decrease in the magnitude of the carbonate fractionation factor provides the best explanation for a positive shift in View the MathML source values, especially given the rapid nature of the excursion. Because a decrease in the fractionation factor corresponds to an increase in the Ca/CO3 ratio of seawater, we tentatively attribute the positive Ca isotope excursion to transient ocean acidification, i.e., a reduction in the concentration of View the MathML source during CO2 uptake. Recent studies utilizing a variety of isotope proxies, e.g., Nd, Os, and Pb, implicate eruption of the Caribbean Large Igneous Province as a likely source of increased CO2. Moreover, integration of C, Ca, and Os isotope data reveals new information about the timing of events during the onset of OAE 2. Article in Journal/Newspaper Ocean acidification Durham University: Durham Research Online Earth and Planetary Science Letters 416 121 131
institution Open Polar
collection Durham University: Durham Research Online
op_collection_id ftunivdurham
language unknown
description The Ca isotope composition of marine carbonate rocks offers potential to reconstruct drivers of environmental change in the geologic past. This study reports new, high-precision Ca isotope records (View the MathML source; 2σSD=±0.04‰) for three sections spanning a major perturbation to the Cretaceous ocean-climate system known as Ocean Anoxic Event 2 (OAE 2): central Colorado, USA (Portland #1 core), southeastern France (Pont d'Issole), and Hokkaido, Japan (Oyubari, Yezo Group). In addition, we generated new data for selected samples from Eastbourne, England (English Chalk), where a previous Ca isotope study was completed using different methodology (Blättler et al., 2011). Strata of the Yezo Group contain little carbonate (∼1 wt.% on average) and accordingly did not yield a clear View the MathML source signal. The Portland core and the Pont d'Issole section display comparable View the MathML source values, which increase by ∼0.10–0.15‰ at the onset of OAE 2 and then decrease to near-initial values across the event. The Eastbourne View the MathML source values are higher than previously reported. They are also higher than the View the MathML source values for the Portland core and the Pont d'Issole section but define a similar pattern. According to a numerical model of the marine Ca cycle, elevated hydrothermal inputs have little impact on seawater View the MathML source values. Elevated riverine (chemical weathering) inputs produce a transient negative isotope excursion, which significantly differs from the positive isotope excursions observed in the Portland, Pont d'Issole, and Eastbourne records. A decrease in the magnitude of the carbonate fractionation factor provides the best explanation for a positive shift in View the MathML source values, especially given the rapid nature of the excursion. Because a decrease in the fractionation factor corresponds to an increase in the Ca/CO3 ratio of seawater, we tentatively attribute the positive Ca isotope excursion to transient ocean acidification, i.e., a reduction in the concentration of View the MathML source during CO2 uptake. Recent studies utilizing a variety of isotope proxies, e.g., Nd, Os, and Pb, implicate eruption of the Caribbean Large Igneous Province as a likely source of increased CO2. Moreover, integration of C, Ca, and Os isotope data reveals new information about the timing of events during the onset of OAE 2.
format Article in Journal/Newspaper
author Du Vivier, Alice D. C.
Jacobson, Andrew D.
Lehn, Gregory O.
Selby, David
Hurtgen, Matthew T.
Sageman, Bradley B.
spellingShingle Du Vivier, Alice D. C.
Jacobson, Andrew D.
Lehn, Gregory O.
Selby, David
Hurtgen, Matthew T.
Sageman, Bradley B.
Ca isotope stratigraphy across the Cenomanian-Turonian OAE 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor.
author_facet Du Vivier, Alice D. C.
Jacobson, Andrew D.
Lehn, Gregory O.
Selby, David
Hurtgen, Matthew T.
Sageman, Bradley B.
author_sort Du Vivier, Alice D. C.
title Ca isotope stratigraphy across the Cenomanian-Turonian OAE 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor.
title_short Ca isotope stratigraphy across the Cenomanian-Turonian OAE 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor.
title_full Ca isotope stratigraphy across the Cenomanian-Turonian OAE 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor.
title_fullStr Ca isotope stratigraphy across the Cenomanian-Turonian OAE 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor.
title_full_unstemmed Ca isotope stratigraphy across the Cenomanian-Turonian OAE 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor.
title_sort ca isotope stratigraphy across the cenomanian-turonian oae 2 : links between volcanism, seawater geochemistry, and the carbonate fractionation factor.
publisher Elsevier
publishDate 2015
url http://dro.dur.ac.uk/14521/
http://dro.dur.ac.uk/14521/1/14521.pdf
https://doi.org/10.1016/j.epsl.2015.02.001
genre Ocean acidification
genre_facet Ocean acidification
op_source Earth and planetary science letters, 2015, Vol.416, pp.121-131 [Peer Reviewed Journal]
op_relation dro:14521
issn:0012-821X
doi:10.1016/j.epsl.2015.02.001
http://dro.dur.ac.uk/14521/
http://dx.doi.org/10.1016/j.epsl.2015.02.001
http://dro.dur.ac.uk/14521/1/14521.pdf
op_rights © 2015 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
op_rightsnorm CC-BY
op_doi https://doi.org/10.1016/j.epsl.2015.02.001
container_title Earth and Planetary Science Letters
container_volume 416
container_start_page 121
op_container_end_page 131
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