Abstract
Reversibility studies suggest a lagged recovery of global mean sea surface temperatures after mitigation, raising the question of whether a similar lag is likely for marine net primary production (NPP). Here we assess NPP reversibility with a mitigation scenario in which projected Representative Concentration Pathway (RCP) 8.5 forcings are applied out to 2100 and then reversed over the course of the following century in a fully coupled carbon-climate Earth System Model. In contrast to the temperature lag, we find a rapid increase in global mean NPP, including an overshoot to values above contemporary means. The enhanced NPP arises from a transient imbalance between the cooling surface ocean and continued warming in subsurface waters, which weakens upper ocean density gradients, resulting in deeper mixing and enhanced surface nitrate. We also find a marine ecosystem regime shift as persistent silicate depletion results in increased prevalence of large, non-diatom phytoplankton. Key Points Marine primary productivity exceeds contemporary values after mitigation Legacy subsurface warming increases mixing and enhances surface nitrate Shift in phytoplankton community structure from persistent silicate depletion.
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John, J. G., Stock, C. A., & Dunne, J. P. (2015). A more productive, but different, ocean after mitigation. Geophysical Research Letters, 42(22), 9836–9845. https://doi.org/10.1002/2015GL066160
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