Controls on marine primary productivity variation and organic matter accumulation during the Late Ordovician-Early Silurian transition. (August 2022)
- Record Type:
- Journal Article
- Title:
- Controls on marine primary productivity variation and organic matter accumulation during the Late Ordovician-Early Silurian transition. (August 2022)
- Main Title:
- Controls on marine primary productivity variation and organic matter accumulation during the Late Ordovician-Early Silurian transition
- Authors:
- Wang, Dongsheng
Liu, Yang
Zhang, Jinchuan
Lang, Yue
Li, Zhen
Tong, Zhongzheng
Xu, Longfei
Su, Zexin
Niu, Jialiang - Abstract:
- Abstract: The Late Ordovician−Early Silurian is a convergence period of multiple events in geological history, including dramatic variations of biology, environment, and geology. Extensive research has demonstrated remarkable fluctuations in ocean chemistry, microbial ecosystems, and biogeochemical elemental cycles experienced. However, the spatial-temporal evaluation of marine primary productivity and its links to organic matter accumulation during this key period remain elusive. Here, we present high-resolution marine primary productivity proxy (organic carbon accumulation rates: OCAR) and geochemical data from the Fengtonggang and Qiliao sections deposited in South China and adopted numerous other coeval sections of geochemical data globally, to improve the understanding of these fundamental scientific questions. The results show that all statistical profiles presented broadly high marine primary productivity before and after the Hirnantian glaciation maximum and low values during the glaciation, and a maximum marine primary productivity typically recorded at the uppermost part of the P.pacificus Zone. The Corg /Ptotal ratios indicate that oceanic anoxia was ubiquitous during the Late Katian to Early Rhuddanian, but strong spatial heterogeneous during the Hirnantian glaciation maximum. The volcanism and nitrogen availability may have played an important role in regulating the variations of marine primary productivity globally. Besides, redox-controlled phosphorus cyclingAbstract: The Late Ordovician−Early Silurian is a convergence period of multiple events in geological history, including dramatic variations of biology, environment, and geology. Extensive research has demonstrated remarkable fluctuations in ocean chemistry, microbial ecosystems, and biogeochemical elemental cycles experienced. However, the spatial-temporal evaluation of marine primary productivity and its links to organic matter accumulation during this key period remain elusive. Here, we present high-resolution marine primary productivity proxy (organic carbon accumulation rates: OCAR) and geochemical data from the Fengtonggang and Qiliao sections deposited in South China and adopted numerous other coeval sections of geochemical data globally, to improve the understanding of these fundamental scientific questions. The results show that all statistical profiles presented broadly high marine primary productivity before and after the Hirnantian glaciation maximum and low values during the glaciation, and a maximum marine primary productivity typically recorded at the uppermost part of the P.pacificus Zone. The Corg /Ptotal ratios indicate that oceanic anoxia was ubiquitous during the Late Katian to Early Rhuddanian, but strong spatial heterogeneous during the Hirnantian glaciation maximum. The volcanism and nitrogen availability may have played an important role in regulating the variations of marine primary productivity globally. Besides, redox-controlled phosphorus cycling may have also exerted a remarkable influence on marine primary productivity. The high Corg /Ptotal ratios (exceed the Redfield ratio of 106/1) observed in the Wufeng and Longmaxi formations indicate that phosphorus was recycled effectively back to the water column, promoting a positive productivity feedback. By contrast, the low Corg /Ptotal ratios found in the Guanyinqiao Bed reflect phosphorus retention in the sediment, limiting phosphorus recycling back to the water column, consequently restricting the primary production. The enhanced marine primary productivity resulted from nutrient regeneration, ocean anoxia, and high sea level may have led to high organic carbon export and preservation. The consistency between the highest marine primary productivity and the first pulse of mass extinction suggests that eutrophication-induced marine anoxia may have played an essential killing mechanism during the first Late Ordovician mass extinction. Highlights: A model of the global high-resolution spatial-temporal evolution of marine primary productivity was established. Marine primary productivity was jointly affected by volcanism, nitrogen availability, and redox-controlled phosphorus cycle. The enhanced primary productivity, ocean anoxia, and high sea level were likely to control the organic matter accumulation. Eutrophication-induced marine anoxia may have played a key kill mechanism during the first Late Ordovician mass extinction. … (more)
- Is Part Of:
- Marine and petroleum geology. Volume 142(2022)
- Journal:
- Marine and petroleum geology
- Issue:
- Volume 142(2022)
- Issue Display:
- Volume 142, Issue 2022 (2022)
- Year:
- 2022
- Volume:
- 142
- Issue:
- 2022
- Issue Sort Value:
- 2022-0142-2022-0000
- Page Start:
- Page End:
- Publication Date:
- 2022-08
- Subjects:
- Ordovician-Silurian transition -- Marine primary productivity -- Redox conditions -- Phosphorus cycling -- Organic matter accumulation -- Mass extinction
Submarine geology -- Periodicals
Petroleum -- Geology -- Periodicals
Géologie sous-marine -- Périodiques
Pétrole -- Géologie -- Périodiques
Petroleum -- Geology
Submarine geology
Periodicals
Electronic journals
551.468 - Journal URLs:
- http://www.sciencedirect.com/science/journal/02648172 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.marpetgeo.2022.105742 ↗
- Languages:
- English
- ISSNs:
- 0264-8172
- Deposit Type:
- Legaldeposit
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- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5373.632100
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