Scholay

学术搜索 · AI 审稿 · LaTeX 协作

Ice core dating with the 36Cl/10Be ratio

作者:Niklas Kappelt, Raimund Muscheler, Mélanie Baroni, J. Beer, Marcus Christl, Christof Vockenhuber, Édouard Bard, Eric Wolff · 发表于:Quaternary Science Reviews · 年份:2025 · DOI:10.1016/j.quascirev.2025.109254 · 被引用次数:5 · 研究领域:Geology and Paleoclimatology Research、Methane Hydrates and Related Phenomena、Cryospheric studies and observations

Extremely thinned layers and possible folding make the dating of the deepest sections of ice cores especially challenging. Cosmogenic radionuclides have the potential to provide independent age estimates. The 36 Cl/ 10 Be ratio is largely independent of production rate changes that affect individual radionuclides and has an effective half-life of 384 kyr, making it an ideal tool for dating the new 1.5 Myr old ice core that the Beyond EPICA Oldest Ice Core project aims to retrieve at Little Dome C in East Antarctica. However, the loss of 36 Cl through hydrogen chloride outgassing at low accumulation sites complicates its application and the long-term decay of the 36 Cl/ 10 Be ratio in ice has not been studied. Here, we show that 36 Cl is preserved in glacial periods and that the 36 Cl/ 10 Be ratio decreases more slowly than expected from physical decay over the last 900 kyr. While the glacial 36 Cl flux decreases at the expected rate of physical decay within the uncertainty, the 10 Be flux decreases faster, which may be linked to a post-depositional mobility of 10 Be in deep ice and leads to the slower decrease of the 36 Cl/ 10 Be ratio. In addition to this long-term trend, the 36 Cl/ 10 Be ratio fluctuates around a fitted decay curve, which is likely caused by different climate sensitivities of the transport and deposition pathways of the individual radionuclides. Both effects need to be better understood and quantified to improve age estimates based on the 36 Cl/ 10 Be ratio...