By University of Bristol

A new study has revealed significant progress in the drive to reduce levels in the atmosphere of chemicals that destroy Earth’s ozone layer, confirming the success of historic regulations limiting their production.

The findings, led by the University of Bristol and published today in Nature Climate Change, show for the first time a notable decline in the atmospheric levels of potent ozone-depleting substances (ODS), called hydrochlorofluorocarbons (HCFCs). These HCFCs are also harmful greenhouse gases, so a reduction should also lessen global warming.

The Montreal Protocol was agreed to internationally in 1987 to introduce controls on the production and usage of ODS, which were once widely used in the manufacture of hundreds of products, including refrigerators, aerosol sprays, foams and packaging.

HCFCs were developed as replacements for chlorofluorocarbons (CFCs). While production of CFCs has been banned globally since 2010, HCFC production and usage is still being phased out.

Lead author Dr Luke Western, Marie Curie Research Fellow at the University’s School of Chemistry, said: “The results are very encouraging. They underscore the great importance of establishing and sticking to international protocols.

“Without the Montreal Protocol, this success would not have been possible, so it’s a resounding endorsement of multilateral commitments to combat stratospheric ozone depletion, with additional benefits in tackling human-induced climate change.”

The international study shows the total amount of ozone depleting chlorine contained in all HCFCs peaked in 2021. Because these compounds are also potent greenhouse gases, their contribution to climate change also peaked in that year. This maximum occurred five years before the most recent predictions. Although the drop between 2021 and 2023 was less than 1%, it still shows HCFC emissions are heading in the right direction.

Dr Western said: “Their production is currently being phased out globally, with a completion date slated for 2040. In turn these HCFCs are being replaced by non-ozone depleting hydrofluorocarbons (HFCs) and other compounds. By enforcing strict controls and promoting the adoption of ozone-friendly alternatives, the protocol has successfully curbed the release and levels of HCFCs into the atmosphere.”

The results rely on high-precision measurements at globally distributed atmospheric observatories, using data from the Advanced Global Atmospheric Gases Experiment (AGAGE) and the National Atmospheric and Oceanic Administration (NOAA).

“We use highly sensitive measurement techniques and thorough protocols to ensure the reliability of these observations,” said co-author Dr Martin Vollmer, an atmospheric scientist at the Swiss Federal Laboratories for Materials Science and Technology (EMPA).

Co-author Dr Isaac Vimont, a research scientist at the NOAA in the United States, added: “This study highlights the critical need to be vigilant and proactive in our environmental monitoring, ensuring other controlled ozone depleting and greenhouse gases follow a similar trend which will help to protect the planet for future generations.”

More information: Luke M. Western et al,‘Global Reduction in Harmful Greenhouse Gases and Ozone-Depleting Substances: Success of Montreal Protocol Confirmed’, Nature Climate Change (2024); DOI: 10.1038/s41558-024-02038-7; University of Bristol – Press Release. Featured image: The high-altitude Integrated Carbon Observation System (ICOS) Jungfraujoch station in Switzerland was one of the sampling stations used to take atmospheric measurements of hydrochlorofluorocarbons. Credit: Jungfrau.ch

Image: Closeup shot of a green leaf on a blurred background
The hidden leaf mechanics behind uneven tree growth in a high‑CO₂ worldScience

The hidden leaf mechanics behind uneven tree growth in a high‑CO₂ world

The mechanics of how water and carbon dioxide move in and out of plants greatly affects how trees grow in a carbon-dioxide-enriched environments Summary: Rising…
SourceSourceDecember 30, 2025 Full article
Image
Climate change to shift tropical rains northwardClimateScience

Climate change to shift tropical rains northward

By David Danelski | University of California - Riverside A study led by a UC Riverside atmospheric scientist predicts that unchecked carbon emissions will force…
SourceSourceJune 28, 2024 Full article
Image: Sunlit clouds providing a bright airy background
Microplastics found to shape cloud formation, potentially altering weather patterns and climateScience

Microplastics found to shape cloud formation, potentially altering weather patterns and climate

Penn State researchers have revealed that microplastics may be influencing the way clouds form, with potential implications for weather patterns, climate models, and even aviation…
Muser NewsDeskMuser NewsDeskNovember 7, 2024 Full article