Daphne Meidan, Carlos A Cuevas, Julián Villamayor, Rafael P Fernandez, Nicolás J Cosentino, Samuel Albani, Natalie M Mahowald, Andrea Spolaor, Juan Pablo Corella, Michaela Mühl, Jennifer Campos Ayala, Markus Grimmer, Jochen Schmitt, Hubertus Fischer, Alfonso Saiz-Lopez
Atmospheric methane (CH4) plays a central role in Earth's climate, yet the drivers of its decline during the high-dust conditions of glacial periods, such as the Last Glacial Maximum (LGM), remain uncertain. Previous explanations imply source-driven changes, assuming an atmospheric lifetime comparable to that of present day. Recent work shows that interactions between mineral dust and sea salt aerosols produce CH4-removing chlorine radicals. In this work, we show that during the LGM, CH4 lifetime shortened to 7.8 years, 20% lower than that of present day. Chlorine contributed ~15% of global CH4 loss, fourfold that of present day. Our results reproduce ice core CH4 isotopic evidence, demonstrating that stronger-than-assumed atmospheric sinks can explain CH4 variability without invoking substantial source changes, highlighting the overlooked role of chlorine chemistry in the glacial CH4 budget.