A Rutgers researcher and colleagues find that decisions today may reduce the rise in seas facing coastal communities

Cutting greenhouse gas emissions now may limit how much ice Antarctica loses this century and reduce the rise in seas facing coastal communities, according to findings from a new study.

Man in blue sweater stands outside
Climate scientist Robert Kopp says communities are making decisions now about buildings and infrastructure that will last for decades.

The research, reported in Nature Geoscience by an international team of scientists, including Rutgers climate scientist Robert Kopp, provides evidence that decisions about emissions today can influence how much water Antarctica adds to the oceans by 2100.

The team found at least an 89% probability that the most ambitious low emission goal that fit the objectives of the Paris Agreement,  an international treaty on climate change adopted in 2015, would result in less Antarctic ice loss by the end of the century than very high emissions.

“Coastal communities need to prepare for rising seas, and the amount of rise they will have to manage still depends on the choices we make today,” said Kopp, a Distinguished Professor with the Department of Earth and Planetary Sciences in the Rutgers School of Arts and Sciences and an author of the study. “Cutting emissions now can limit the risks facing future generations. Better projections can help communities decide how to protect homes, roads and other essential infrastructure.”

Kopp was honored with the American Geophysical Union’s 2026 Ambassador Award, which recognizes contributions that extend beyond scientific achievement to benefit society and advance the common good.

The study shows how higher emissions could trigger a series of changes that speed up the movement of Antarctic ice into the ocean. 

“What we still control is how much, and whether we set off the chain reaction that takes us to the high end,” said Yucheng Lin an assistant professor at the City University of Hong Kong, and a former postdoctoral associate in the Department of Earth and Planetary Sciences. “Every ton of greenhouse gas we add makes it worse, and the effect lasts for hundreds of years.”

The opportunity to limit future damage comes with a sobering finding, the researchers found. Antarctica is very likely to lose ice overall through the end of this century even if nations sharply cut emissions. The researchers put that probability at least 92% under the most ambitious scenario, in which the world cuts carbon dioxide emissions to net zero at around the year 2050.

A waddle of penguins gather on an outcrop near an Antarctica lake
Antarctica holds the world’s largest store of frozen freshwater. 

Antarctica holds the world’s largest store of frozen freshwater. Its enormous ice sheet rests on land, and when that ice moves into the ocean, it adds water and raises sea levels. Floating shelves of ice along the continent’s edges help restrain the glaciers behind them, acting somewhat like brakes.

The researchers examined how those brakes could weaken as the climate warms. Warmer ocean water melts ice shelves from below, thinning them, Lin said. As the shelves weaken or break apart, glaciers can flow more quickly into the sea. How easily the ice slides over the ground beneath it also influences the pace of that loss.

Under certain combinations of conditions, these changes can reinforce one another and accelerate the movement of ice into the ocean, he said.

To explore that possibility, the team examined combinations of assumptions producing the highest projected losses while remaining consistent with satellite observations. Under very high emissions, this selected high-end analysis produced a middle estimate of about 6 inches of sea-level rise from Antarctica by 2100, with an upper estimate of about 10 inches.

Those figures describe a possible high-impact outcome, rather than the study’s central forecast. The 10-inch estimate isn’t an absolute ceiling. It also represents Antarctica’s contribution alone, excluding water from melting Greenland ice and mountain glaciers as well as the expansion of seawater as it warms.

The researchers found that additional snowfall in a warmer climate is very unlikely to replace all the ice Antarctica loses. Its response to climate change unfolds slowly, meaning the consequences of today’s emissions can persist long after they enter the atmosphere.

Reaching clearer conclusions about Antarctica has long challenged researchers, Kopp said. Computer models must connect global warming with changes in the surrounding ocean and atmosphere, then calculate how the ice responds. Different assumptions at each step can produce widely different answers.

Running enough detailed simulations to explore all those possibilities would require enormous computing resources. The team instead used machine learning, a subset of artificial intelligence, to analyze an existing collection of ice-sheet simulations, allowing researchers to rapidly explore combinations of assumptions. 

The machine-learning tool learned the relationships between the assumptions in those simulations and their results. It could then estimate outcomes much faster than the original models, allowing the researchers to explore possibilities that would otherwise have been too costly to test in detail.

They checked the results against satellite measurements of Antarctic ice loss from 2002 to 2021, giving greater weight to combinations that better matched observations. That comparison narrowed the range of projected outcomes and increased confidence that Antarctica would lose ice overall this century.

The analysis also helped identify where additional research could make the greatest difference. Three major sources of uncertainty involve how warming ocean water melts ice shelves, how ice slides over bedrock and how the ocean and atmosphere warm around Antarctica.

“We can't afford to study every detail of an ice sheet model, so we have to know which details matter,” Lin said.

Better measurements of those processes could sharpen projections and help communities make decisions about coastal development and protection, he said.

But the researchers said their analysis cannot account for processes missing from the original simulations, including some interactions among ice, ocean and atmosphere and changes in water flowing beneath the ice sheet.

Those gaps leave open the possibility of outcomes beyond the study’s projections. 

“We still have questions about how quickly Antarctica will change, but communities are making decisions now about buildings and infrastructure that will last for decades,” Kopp said. “Giving them a clearer picture of the risks can help them prepare.” 

Explore more of the ways Rutgers research is shaping the future.