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Submarine metalliferous carbonate mounds in the Cambrian of the Baltoscandian Basin induced by vent networks and water column stratification

Two massive precipitation events of polymetallic ore deposits, encrusted by a mixture of authigenic carbonates, are documented from the Cambrian of the semi-enclosed Baltoscandian Basin. δ(34)S (‒9.33 to ‒2.08‰) and δ(33)S (‒4.75 to ‒1.06‰) values from the basal sulphide breccias, sourced from conte...

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Autores principales: Álvaro, J. Javier, Holmer, Lars E., Shen, Yanan, Popov, Leonid E., Ghobadi Pour, Mansoureh, Zhang, Zhifei, Zhang, Zhiliang, Ahlberg, Per, Bauert, Heikki, González-Acebrón, Laura
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9119982/
https://www.ncbi.nlm.nih.gov/pubmed/35589924
http://dx.doi.org/10.1038/s41598-022-12379-y
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author Álvaro, J. Javier
Holmer, Lars E.
Shen, Yanan
Popov, Leonid E.
Ghobadi Pour, Mansoureh
Zhang, Zhifei
Zhang, Zhiliang
Ahlberg, Per
Bauert, Heikki
González-Acebrón, Laura
author_facet Álvaro, J. Javier
Holmer, Lars E.
Shen, Yanan
Popov, Leonid E.
Ghobadi Pour, Mansoureh
Zhang, Zhifei
Zhang, Zhiliang
Ahlberg, Per
Bauert, Heikki
González-Acebrón, Laura
author_sort Álvaro, J. Javier
collection PubMed
description Two massive precipitation events of polymetallic ore deposits, encrusted by a mixture of authigenic carbonates, are documented from the Cambrian of the semi-enclosed Baltoscandian Basin. δ(34)S (‒9.33 to ‒2.08‰) and δ(33)S (‒4.75 to ‒1.06‰) values from the basal sulphide breccias, sourced from contemporaneous Pb–Zn–Fe-bearing vein stockworks, reflect sulphide derived from both microbial and abiotic sulphate reduction. Submarine metalliferous deposits were triggered by non-buoyant hydrothermal plumes: plumes of buoyant fluid were trapped by water column stratification because their buoyancy with respect to the environment reversed, fluids became heavier than their surroundings and gravitational forces brought them to a halt, spreading out laterally from originating vents and resulting in the lateral dispersion of effluents and sulphide particle settling. Subsequently, polymetallic exhalites were sealed by carbonate crusts displaying three generations of ikaite-to-aragonite palisade crystals, now recrystallized to calcite and subsidiary vaterite. T(h) of fluid inclusions in early calcite crystals, ranging from 65 to 78 ºC, provide minimum entrapment temperatures for carbonate precipitation and early recrystallization. δ(13)C(carb) (‒1.1 to + 1.6‰) and δ(18)O(carb) (‒7.6 to ‒6.5‰) values are higher than those preserved in contemporaneous glendonite concretions (‒8.5 to ‒4.7‰ and ‒12.4 to ‒9.1‰, respectively) embedded in kerogenous shales, the latter related to thermal degradation of organic matter. Hydrothermal discharges graded from highly reduced, acidic, metalliferous, and hot (~ 150 ºC) to slightly alkaline, calcium-rich and warm (< 100 ºC), controlling the precipitation of authigenic carbonates.
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spelling pubmed-91199822022-05-21 Submarine metalliferous carbonate mounds in the Cambrian of the Baltoscandian Basin induced by vent networks and water column stratification Álvaro, J. Javier Holmer, Lars E. Shen, Yanan Popov, Leonid E. Ghobadi Pour, Mansoureh Zhang, Zhifei Zhang, Zhiliang Ahlberg, Per Bauert, Heikki González-Acebrón, Laura Sci Rep Article Two massive precipitation events of polymetallic ore deposits, encrusted by a mixture of authigenic carbonates, are documented from the Cambrian of the semi-enclosed Baltoscandian Basin. δ(34)S (‒9.33 to ‒2.08‰) and δ(33)S (‒4.75 to ‒1.06‰) values from the basal sulphide breccias, sourced from contemporaneous Pb–Zn–Fe-bearing vein stockworks, reflect sulphide derived from both microbial and abiotic sulphate reduction. Submarine metalliferous deposits were triggered by non-buoyant hydrothermal plumes: plumes of buoyant fluid were trapped by water column stratification because their buoyancy with respect to the environment reversed, fluids became heavier than their surroundings and gravitational forces brought them to a halt, spreading out laterally from originating vents and resulting in the lateral dispersion of effluents and sulphide particle settling. Subsequently, polymetallic exhalites were sealed by carbonate crusts displaying three generations of ikaite-to-aragonite palisade crystals, now recrystallized to calcite and subsidiary vaterite. T(h) of fluid inclusions in early calcite crystals, ranging from 65 to 78 ºC, provide minimum entrapment temperatures for carbonate precipitation and early recrystallization. δ(13)C(carb) (‒1.1 to + 1.6‰) and δ(18)O(carb) (‒7.6 to ‒6.5‰) values are higher than those preserved in contemporaneous glendonite concretions (‒8.5 to ‒4.7‰ and ‒12.4 to ‒9.1‰, respectively) embedded in kerogenous shales, the latter related to thermal degradation of organic matter. Hydrothermal discharges graded from highly reduced, acidic, metalliferous, and hot (~ 150 ºC) to slightly alkaline, calcium-rich and warm (< 100 ºC), controlling the precipitation of authigenic carbonates. Nature Publishing Group UK 2022-05-19 /pmc/articles/PMC9119982/ /pubmed/35589924 http://dx.doi.org/10.1038/s41598-022-12379-y Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Álvaro, J. Javier
Holmer, Lars E.
Shen, Yanan
Popov, Leonid E.
Ghobadi Pour, Mansoureh
Zhang, Zhifei
Zhang, Zhiliang
Ahlberg, Per
Bauert, Heikki
González-Acebrón, Laura
Submarine metalliferous carbonate mounds in the Cambrian of the Baltoscandian Basin induced by vent networks and water column stratification
title Submarine metalliferous carbonate mounds in the Cambrian of the Baltoscandian Basin induced by vent networks and water column stratification
title_full Submarine metalliferous carbonate mounds in the Cambrian of the Baltoscandian Basin induced by vent networks and water column stratification
title_fullStr Submarine metalliferous carbonate mounds in the Cambrian of the Baltoscandian Basin induced by vent networks and water column stratification
title_full_unstemmed Submarine metalliferous carbonate mounds in the Cambrian of the Baltoscandian Basin induced by vent networks and water column stratification
title_short Submarine metalliferous carbonate mounds in the Cambrian of the Baltoscandian Basin induced by vent networks and water column stratification
title_sort submarine metalliferous carbonate mounds in the cambrian of the baltoscandian basin induced by vent networks and water column stratification
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9119982/
https://www.ncbi.nlm.nih.gov/pubmed/35589924
http://dx.doi.org/10.1038/s41598-022-12379-y
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