It takes Pluto 248 years to complete one journey around the Sun. Humanity has known of its existence for less than half of that time, and we are still discovering the myriad ways that Pluto is unlike other celestial objects. Among other oddities: Pluto is the only object beyond Neptuneâs orbit to have an atmosphere.
But that might not always be the case.
Because Pluto experiences such a drastic change in the amount of sunlight it receives throughout its 2-century year, planetary scientists have theorized that Plutoâs nitrogen-dominated atmosphere might come and go with its seasons. Now, new research suggests that Plutoâs atmospheric pressure is beginning to drop, potentially heralding atmospheric collapse ahead of Plutonian winter.
Power of the Occult
Pluto was discovered in 1930, but astronomers didnât detect its atmosphere until 1988. They carefully observed as Pluto briefly blocked the light from a distant star and noticed that the starlight traveled through a thin gaseous layer of mostly nitrogen, with a little bit of methane, carbon monoxide, and hydrocarbons. This method of detection, called stellar occultation, allows scientists to monitor the bulk properties of Plutoâs atmosphere, like the height and pressure, as well as some finer details like atmospheric waves and the presence of haze.
Then in 2015, NASAâs New Horizons spacecraft flew through the Pluto system. It provided the clearest pictures to date of Plutoâs atmosphere and revealed surprising complexity. Since then, planetary scientists have continued to monitor the dwarf planetâs atmosphere via occultations.

âStellar occultations provide a snapshot of the physical properties of Plutoâs atmosphere [at] a given time. The path that the starlight takes through a thin atmosphere is a function of its composition as well as the temperature and density profiles,â Amanda Sickafoose, a planetary scientist at the Planetary Science Institute in Tucson, Ariz., told Eos via email. Sickafoose is the lead author on the new discovery.
But occultations happen only when Pluto and a background star line up just right, which is maybe once or twice a year. Whatâs more, given how subtle the signal from Plutoâs atmosphere is, the answers inferred from one telescope and analysis method might differ from those of another method. These challenges make it difficult for astronomers to put together a uniform and cohesive dataset that shows the subtle changes in Plutoâs atmosphere over time.
An Almost Airless Winter
Sickafoose and her colleagues sought to overcome these challenges by compiling Pluto occultation data spanning 1988â2023, including 10 new occultations from 2017 to 2023, and analyzing them in a consistent way. The observations were made at more than 15 different telescope sites around the world. But by reanalyzing the data in a uniform way, the team minimized telescope-specific differences and was able to tease out details of how Plutoâs atmosphere has evolved.
The teamâs analysis showed that Plutoâs upper and lower atmospheres have responded differently to weakening sunlight.
âIn terms of size and pressure, we find that Plutoâs atmosphere remained roughly stable from the New Horizons flyby in 2015 through 2021,â Sickafoose said. âOur most recent datasets in 2022 and 2023 suggest that the pressure has dropped, at a level of 16%, in the lower atmosphere.â

The data also indicate that while Plutoâs upper atmosphere remains haze free, its lower atmosphere haze has started to clear up. Astronomers have noted the change in haze before and suspect that haze particles are snowing down as Plutoâs atmosphere cools. The team published these results in The Planetary Science Journal in July.
âThis is great work!â said Perianne Johnson, a Pluto climate scientist at Purdue University in West Lafayette, Ind., who was not involved with this research. âWe are hoping to identify slight changes in Plutoâs atmosphere, and it can be difficult to ascertain if reported differences are truly changes to the atmosphere or just differences between the way two scientists processed the data and different assumptions they made about unknown atmospheric properties. In this work, we can trust that the reported changes to the atmospheric pressure are real.â
Nitrogen Snow
Like many trans-Neptunian objects (TNOs), Plutoâs orbit is very noncircular and angled steeply from the ecliptic plane. Its temperature changes drastically throughout its year, depending on how far it is from the Sun. Since the discovery of Plutoâs atmosphere, astronomers have theorized that the atmosphere may freeze out, or collapse, as Plutoâs temperature drops.
Astronomers âanticipated a drop in pressure sometime in the upcoming decades, based on atmospheric models that consider things like Plutoâs orbit, the amount of Sun received at different locations on its surface, and the surface ice properties,â Sickafoose said.
âPluto is the best studied TNO, and what we learn about Pluto helps put other TNOs in context.â
These data suggest that that collapse might be starting. And while a 16% drop in atmospheric pressure may sound small, Johnson said, âit is important to note that that change occurred over a period of just a few years, which is only a few percent of Plutoâs orbital timescale. So this is rapid, exciting change and is indicative of ice condensation occurring somewhere on Pluto.â
Most theories predict that once the collapse starts, Plutoâs atmospheric pressure will continue to drop for more than 150 years before eventually bouncing back in the 23rd century. Pinning down when and how fast the collapse happens holds clues for where atmospheric nitrogen is condensing and snowing down onto Plutoâs southern hemisphere ice deposits.
The next opportunity for high-quality occultation observations of Pluto is in 2027 and could verify whether atmospheric collapse is imminent.
âOccultations are an incredibly powerful tool for observing the distant solar system from Earth,â Johnson said. âPluto is the best studied TNO, and what we learn about Pluto helps put other TNOs in context.â
âKimberly M. S. Cartier (@astrokimcartier.bsky.social), Staff Writer
Citation: Cartier, K. M. S. (2026), Plutoâs atmosphere may be collapsing, Eos, 107, https://doi.org/10.1029/2026EO260288. Published on 11 September 2026.
Text © 2026. AGU. CC BY-NC-ND 3.0
Except where otherwise noted, images are subject to copyright. Any reuse without express permission from the copyright owner is prohibited.

News reported through various sources and compiled with AI. This is automatically generated news content from known, popular, and reliable sources available at the time of publication.
We do not take any responsibility for, nor make any representations regarding, the accuracy, completeness, credibility, or
reliability of the content.
In case of any discrepancy, error, or copyright claim, we will promptly review and remove the content in question where appropriate.
We do not claim ownership of third-party content and assume no responsibility or liability whatsoever for any information contained herein. The credit, links and images are kept intact as an honest gesture, are property of its respective owners.
