FIRST DISCOVERY OF AUTHIGENIC CARBONATES ON THE LAPTEV SEA FLANK OF THE GAKKEL RIDGE (ARCTIC OCEAN)
- Authors: Kaminsky D.V.1, Pokrovsky B.G.2, Petrov O.V.3, Kiel A.O.1, Semenov P.B.1, Okina O.I.2, Logvina E.A.1, Kaminsky V.D.1, Dubensky A.S.2, Degtyarev K.E.2, Bujakaite M.I.2, Neevin I.A.3, Krylov A.A.1, Chamov N.P.2, Tolmacheva T.Y.3
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Affiliations:
- All-Russian Science Research Institution Okeangeologiya
- Geological Institute of the Russian Academy of Sciences
- All-Russian Geological Institution
- Issue: Vol 512, No 2 (2023)
- Pages: 219-224
- Section: MINERALOGY
- Submitted: 30.01.2025
- Published: 01.10.2023
- URL: https://snv63.ru/2686-7397/article/view/649809
- DOI: https://doi.org/10.31857/S2686739723601102
- EDN: https://elibrary.ru/DXEQIA
- ID: 649809
Cite item
Abstract
The article describes the first find of authigenic carbonates on the southern flank of the Gakkel Ridge in the zone of its junction with the Laptev Sea continental margin of the Russian Federation. The samples are represented by dense magnesian calcites and aragonites, including rounded and angular fragments of terrigenous material, as well as microphytoplankton of different ages, spores and pollen of terrestrial and aquatic plants. Elemental and organochemical characteristics indicate the predominance of oxidizing or intermediate between oxidizing and reducing conditions of carbonate crystallization, which may be a consequence of their formation near the bottom surface. The isotopic composition of O, C, and Sr allows us to conclude that the diagenetic carbonates of the Gakkel Ridge were deposited mainly in isotopic equilibrium with bottom water at a temperature of about 0°C, which corresponds to measurements from the ship. A wide range of δ13С (–23.5 до –37.3) indicates that methane was an important, but not the only source of carbon in carbonates. The wide variations in the 87Sr/86Sr (0.70906–0.70933), which correlate with the δ13С values, show that the carbonate-forming fluid was not only modern sea water, but also diagenetic solutions coming from the sedimentary cover together with methane and the products of methane and organic matter oxidation. Intense discharge of heterogeneous methane-bearing fluids may be related to the high modern tectonic activity of the studied region.
About the authors
D. V. Kaminsky
All-Russian Science Research Institution Okeangeologiya
Email: Nchamov@yandex.ru
Russian, St. Petersburg
B. G. Pokrovsky
Geological Institute of the Russian Academy of Sciences
Email: Nchamov@yandex.ru
Russian, Moscow
O. V. Petrov
All-Russian Geological Institution
Email: Nchamov@yandex.ru
Russian, St. Petersburg
A. O. Kiel
All-Russian Science Research Institution Okeangeologiya
Email: Nchamov@yandex.ru
Russian, St. Petersburg
P. B. Semenov
All-Russian Science Research Institution Okeangeologiya
Email: Nchamov@yandex.ru
Russian, St. Petersburg
O. I. Okina
Geological Institute of the Russian Academy of Sciences
Email: Nchamov@yandex.ru
Russian, Moscow
E. A. Logvina
All-Russian Science Research Institution Okeangeologiya
Email: Nchamov@yandex.ru
Russian, St. Petersburg
V. D. Kaminsky
All-Russian Science Research Institution Okeangeologiya
Email: Nchamov@yandex.ru
Russian, St. Petersburg
A. S. Dubensky
Geological Institute of the Russian Academy of Sciences
Email: Nchamov@yandex.ru
Russian, Moscow
K. E. Degtyarev
Geological Institute of the Russian Academy of Sciences
Email: Nchamov@yandex.ru
Russian, Moscow
M. I. Bujakaite
Geological Institute of the Russian Academy of Sciences
Email: Nchamov@yandex.ru
Russian, Moscow
I. A. Neevin
All-Russian Geological Institution
Email: Nchamov@yandex.ru
Russian, St. Petersburg
A. A. Krylov
All-Russian Science Research Institution Okeangeologiya
Email: Nchamov@yandex.ru
Russian, St. Petersburg
N. P. Chamov
Geological Institute of the Russian Academy of Sciences
Author for correspondence.
Email: Nchamov@yandex.ru
Russian, Moscow
T. Yu. Tolmacheva
All-Russian Geological Institution
Email: Nchamov@yandex.ru
Russian, St. Petersburg
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