Tag Archives: Parisa A. Ariya

Nanoscale ice crystals can help with better weather and climate predictions

A July 23, 2025 McGill University news release (also on Education News Canada but dated August 6, 2025) announces work observing nanoscale ice particles, Note: Links have been removed,

Researchers have developed a novel method to detect and study how ice forms in mixed-phase clouds, significantly boosting scientists’ ability to forecast weather and model climate change. 

“Clouds are vital to Earth’s climate and water cycle, influencing both rainfall and the planet’s energy balance,” said Devendra Pal, postdoctoral researcher and seasonal course lecturer at McGill’s Department of Atmospheric and Oceanic Sciences. “But mixed-phase clouds are hard to understand and model, partly because researchers still don’t fully know how smaller ice crystals form in them or behave over time.”  

“By observing how these nano-crystals form, grow and scatter sunlight, we can improve the accuracy of weather forecasts and climate models,” said Pal, who co-led the study with Parisa Ariya, James McGill Professor of Chemistry and Atmospheric and Oceanic Sciences. 

“This discovery matters for everyone affected by changing weather patterns – from farmers and city planners to disaster response teams and climate policymakers,” Pal said. 

Had been too small to observe directly

Mixed-phase clouds contain both ice crystals and liquid supercooled droplets, or water droplets that remain liquid at temperatures below 0°C. 

Ice formation in clouds begins with ice-nucleating particles (INPs) – tiny airborne particles, often at the nanometre scale, that act as seeds for freezing. These INPs trigger the formation of ice crystals that can grow from nanometres to millimetres. 

Until now, these nanoscale ice crystals were too small to observe directly or distinguish from their liquid counterparts in real time. Instead, scientists were left to infer whether a particle was ice based on its size limit or analyze how the particle scattered light using a method called polarization ratio. 

A new instrument to observe ice formation in real time 

To overcome this challenge, the team developed the McGill Real-Time Ice Nucleation Chamber (MRINC). It simulates cloud conditions in the lab through precise control over temperature and humidity. 

“Into this chamber, we introduced silver iodide (AgI) particles – known to trigger ice formation –and carefully adjusted the environment to replicate cloud-like conditions,” Pal said. 

The researchers then used a laser-based imaging technique called digital holographic microscopy to observe the formation of ice crystals in real time—previously impossible at this scale. The resulting holographic images were analyzed using AI-powered software, which could instantly determine whether each particle was an ice crystal or a liquid droplet, and assess its size, shape and surface texture. 

“This is the first time such detailed microphysical information has been captured at this scale, and with such fine detail,” said Pal. 

Added Ariya: “Because of a lack of technologies, none of the climate change models could accurately predict these smaller ice crystals. MRINC enables us to advance our understanding of the interaction processes between ice nucleation, radiation and climate change.”  

Next stop: natural clouds 

The findings open a new window into the earliest stages of ice formation in clouds, with implications for satellite cloud observations, precipitation studies and even cloud seeding, a form of manual weather modification. 

As a next step, the team members are adapting the MRINC system for field studies aboard research aircraft and mountaintop observatories. They are also refining the instrument to make it even more precise and adaptable to different atmospheric conditions. These upgrades will allow researchers to track how various particles –such as pollution, dust or wildfire smoke – affect ice formation. 

“Ultimately, our goal is to deliver real-time data that strengthens both climate science and operational weather forecasting,” Pal added. 

Here’s a link to and a citation for the paper,

Microphysical detection of nano-ice nuclei to ice crystals: a platform for ice nucleation research by Devendra Pal, Ryan Hall, Yevgen Nazarenko, Leonard Barrie & Parisa A. Ariya. npj Climate and Atmospheric Science volume 8, Article number: 204 (2025) DOI: https://doi.org/10.1038/s41612-025-01062-4 Published: 29 May 2025

This paper is open access.

Practical tool for detecting nanoplastics and microplastics in the environment

The research announced in this May 6 2025 news item on ScienceDaily is from McGill Universtiy (Montréal, Québec),

A team of McGill University researchers has developed a cost-effective, high-throughput technology for detecting nanoplastics and microplastics in the environment.

These particles are pervasive, posing health and environmental risks, yet detecting them at the nanoscale has been difficult. The 3D-printed HoLDI-MS test platform overcomes the limitations of traditional mass spectrometry by enabling direct analysis of samples without requiring complex sample preparation. The researchers say it also will work for detection of waterborne plastic particles. HoLDI-MS stands for hollow-laser desorption/ionization mass spectrometry.

A May 1, 2025 McGill University news release (also on EurekAlert but published May 6, 2025), which originated the news item, describes how this work will aid detection of nanoplastics and microplastics in the oceans,

“With HoLDI, we provide a method that is effective, quantitative, highly accurate and affordable, making it accessible to researchers worldwide,” said Chemistry Professor Parisa Ariya, who led the study published last month inNature’s Communications Chemistry. “It requires little energy, is recyclable and costs only a few dollars per sample.”

The new method will also advance international co-operation in fighting plastic pollution, in alignment with calls by the United Nations Environment Programme to improve methods, the researchers say.

“Until now, there have been no established universal protocols for nanoplastic detection within the complex environment,” Ariya said.

“This technology allows us to pinpoint the major sources of nano and microplastics in the environment,” she said. “More importantly, it enables data comparison and validation across laboratories worldwide, a crucial step toward harmonizing global research on plastic pollution.”

As part of their study, the researchers identified polyethylene and polydimethylsiloxanes in indoor air, and polycyclic aromatic hydrocarbons in outdoor air.

Here’s a link to and a citation for the paper,

A HoLDI mass spectrometry platform for airborne nanoplastic detection by Zi Wang, Nadim K. Saadé, Robert J. Panetta & Parisa A. Ariya. Communications Chemistry volume 8, Article number: 90 (2025) DOI: https://doi.org/10.1038/s42004-025-01483-5 Published: 25 March 2025

This paper is open access.