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Model-data synthesis of benthic isotopes suggests a warmer Miocene Climatic Optimum

Feng Zhu, Jiang Zhu, Weimin Si, Jared Nirenberg, Timothy D. Herbert, Jessica E. Tierney, R. Paul Acosta, Natalie Burls, David G. Evans

Revista con revisión por pares

En palabras de los autores

The Miocene Climatic Optimum (MCO, ~ 15 Ma) offers insights into warm-climate dynamics and future climate change. However, its global warmth magnitude remains uncertain due to limitations in surface and benthic proxy records. Here, we develop long-run Miocene simulations featuring deep-ocean equilibration and water isotope capability, and present a probabilistic inference framework integrating them with a global compilation of benthic foraminiferal δ18O to better constrain the MCO warmth. Our approach yields a maximum likelihood estimate of MCO global mean surface temperature of 7.5∘C above preindustrial, significantly warmer than previous benthic δ18O-based reconstructions, implying a higher MCO-derived estimate of Earth system sensitivity. The corresponding surface temperature field shows among the best agreements with independent surface temperature proxies. This study highlights the importance of deep-ocean equilibration and proxy-model integration for accurately estimating both deep-ocean and surface temperatures, and offers a method applicable to improving global climate reconstructions across other time intervals. Combining long climate-isotope simulations with deep-sea oxygen isotope records, the Miocene Climatic Optimum (15 Ma) is estimated to have been 7.5∘C warmer than preindustrial -- 30% above earlier estimates.

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Apareció: domingo, 27 de septiembre. Nature Communications. Revista con revisión por pares.

DOI: 10.1038/s41467-026-77980-5