Precise dating of deglacial Laptev Sea sediments via .sup.14C and authigenic .sup.10Be/.sup.9Be - assessing local .sup.14C reservoir ages

Establishing accurate chronological frameworks is imperative for reliably identifying lead-lag dynamics within the climate system and enabling meaningful intercomparisons across diverse paleoclimate proxy records over long time periods. Robust age models provide a solid temporal foundation for estab...

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Veröffentlicht in:Climate of the past 2024-11, Vol.20 (11), p.2617
Hauptverfasser: Nicolas, Arnaud, Mollenhauer, Gesine, Lachner, Johannes, Stübner, Konstanze, Malter, Maylin, Wollenburg, Jutta, Grotheer, Hendrik, Adolphi, Florian
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container_end_page
container_issue 11
container_start_page 2617
container_title Climate of the past
container_volume 20
creator Nicolas, Arnaud
Mollenhauer, Gesine
Lachner, Johannes
Stübner, Konstanze
Malter, Maylin
Wollenburg, Jutta
Grotheer, Hendrik
Adolphi, Florian
description Establishing accurate chronological frameworks is imperative for reliably identifying lead-lag dynamics within the climate system and enabling meaningful intercomparisons across diverse paleoclimate proxy records over long time periods. Robust age models provide a solid temporal foundation for establishing correlations between paleoclimate records. One of the primary challenges in constructing reliable radiocarbon-based chronologies in the marine environment is to determine the regional marine radiocarbon reservoir age correction. Calculations of the local marine reservoir effect (ÎR) can be acquired using independent .sup.14 C dating methods, such as synchronization with other well-dated archives. The cosmogenic radionuclide .sup.10 Be offers such a synchronization tool. Its atmospheric production rate is controlled by the global changes in the cosmic ray influx, caused by variations in solar activity and geomagnetic field strength. The resulting fluctuations in the meteoric deposition of .sup.10 Be are preserved in sediments and ice cores and can thus be utilized for their synchronization. In this study, for the first time, we use the authigenic 10Be/9Be record of a Laptev Sea sediment core for the period 8-14 kyr BP and synchronize it with the .sup.10 Be records from absolutely dated ice cores. Based on the resulting absolute chronology, a benthic ÎR value of +345 ± 60 .sup.14 C years was estimated for the Laptev Sea, which corresponds to a marine reservoir age of 848 ± 90 .sup.14 C years. The ÎR value was used to refine the age-depth model for core PS2458-4, establishing it as a potential reference chronology for the Laptev Sea. We also compare the calculated ÎR value with modern estimates from the literature and discuss its implications for the age-depth model.
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title Precise dating of deglacial Laptev Sea sediments via .sup.14C and authigenic .sup.10Be/.sup.9Be - assessing local .sup.14C reservoir ages
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