Back to an ice-free future: Early Cretaceous seasonal cycles of sea surface temperature and glacier ice.

He, Songlin; Wang, Tianyang; Spicer, Robert A; Farnsworth, Alex; Mulch, Andreas; Widdowson, Mike; Zhang, Qinghai; Cai, Fulong et al. · Sci Adv · 2025

basic_science · Level V

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Abstract

Global ice losses will likely continue with ongoing climate warming, culminating in an almost ice-free planet analogous to that which persisted throughout much of the Cretaceous. Despite extensive research, Early Cretaceous cryosphere responses to temperature and atmospheric <i>P</i><sub>CO<sub>2</sub></sub> fluctuations over short, human, timescales remain uncertain. Here, we show rapid late Valanginian (~133 million years ago) seasonal fluctuations in sea surface temperature (SST) and δ<sup>18</sup>O mainly driven by atmospheric <i>P</i><sub>CO<sub>2</sub></sub>. Two distinctive features emerge: large seasonal variability of up to 15.9° ± 4.9°C in Southern Hemisphere mid-latitudes, comparable to that found today, a positive sea surface δ<sup>18</sup>O value related to evaporation (expressed as salinity increases), and the existence of polar ice. Model-predicted patterns of SST change match with high statistical confidence those derived from clumped isotopes in well-preserved oyster fossils from Madagascar and display consistent warm/cold seasonality. Given its relative coolness in a Cretaceous context, the late Valanginian is a valuable analog for Earth's future climate.