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Reusable magnetic invention removes microplastics plus some PFAS from water

Reusable magnetic invention removes microplastics plus some PFAS from water
Credit: Chemical Engineering Journal (2026). DOI: 10.1016/j.cej.2026.178141

Microplastics are an increasing global concern, with growing evidence of their presence in water systems. RMIT University researchers have developed a water treatment material that rapidly removes micro- and nanoplastics and some PFAS (per- and polyfluoroalkyl substances), bringing the technology closer to real-world use. The invention builds on the team's 2022 breakthrough in microplastics removal, extending its performance to much smaller...

Microplastics are an increasing global concern, with growing evidence of their presence in water systems. RMIT University researchers have developed a water treatment material that rapidly removes micro- and nanoplastics and some PFAS (per- and polyfluoroalkyl substances), bringing the technology closer to real-world use. The invention builds on the team's 2022 breakthrough in microplastics removal, extending its performance to much smaller particles and more complex wastewater.

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The researchers say the ability to remove micro- and nanoplastics under practical conditions sets this work apart. Tests also showed removal of larger PFAS molecules, though the researchers say this work remains at an early stage. The paper is published in the Chemical Engineering Journal.

First author Dr. Muhammad Haris from the School of Engineering said the advance addressed a key gap in water treatment. "Our material is designed to remove micro- and nanoplastics quickly."

Putting removal to the test

In lab testing, the material removed more than 95% of micro- and nanoplastics, including particles as small as 30 nanometers, within one hour. The material also removed more than 95% of tested contaminants, including mercury, chromium, copper, dyes and ibuprofen. About 80% were removed in the first 15 minutes, aligning with contact times used in treatment plants.

The material performed across common plastics such as polyethylene, polypropylene and polyester, and in both fresh and saline water.

Lead researcher Professor Nicky Eshtiaghi from the School of Engineering said capturing nanoscale plastics was critical. "There is currently no effective solution for removing nanoplastics at scale," she said.

From lab to wastewater

The team tested the material in industrial laundry wastewater, a major source of microplastic pollution from synthetic fibers. It removed more than 88% of polyester microfibers along with dyes, maintaining performance despite surfactants and organic matter.

A prototype system combining the adsorbent with magnetic separation technology from One Eye Industries in Canada showed the material could be recovered quickly after treatment and reused.

Co-lead researcher Associate Professor Nasir Mahmood from the School of Science said the results supported practical use. "It worked in realistic water conditions, handled mixed pollutants and could be recovered efficiently," he said.

Roger Simonson, founder and inventor of One Eye Industries, said recovery of treatment material remained one of the biggest barriers to bringing new water treatment technologies out of the laboratory.

"Industry has been waiting for a practical way to move the removal of microplastics and emerging contaminants out of the laboratory and into real treatment environments," he said. "The challenge isn't only capturing these particles, it's recovering the treatment material quickly and reliably after it has done its job, without creating a new waste stream.

"Combining high-performance pollutant capture with proven magnetic separation creates a much stronger pathway to real-world deployment."

Taking the technology to market

The team is working with Indigenous-owned company Fire and Test Australasia, based in Geelong, Victoria, to explore the possibility of treating stormwater and wastewater, including in community settings.

Eshtiaghi said the partnership reflected a shared focus on water stewardship. "Cleaning and protecting water are deeply important for Indigenous communities as custodians of land and waterways," she said.

The researchers are also collaborating with Australian company Star Water Group, which has clients in the United States, including California, where tightening regulations are increasing demand for improved microplastics treatment.

Governments in Europe and the U.S. are placing tighter limits on microplastics entering waterways, increasing pressure on industry.

Simonson said the technology showed strong potential for textile and industrial wastewater, municipal treatment systems, stormwater and decentralized water treatment.

"Professor Eshtiaghi and her team have brought deep scientific expertise and a clear grasp of the operational challenge, and we see real potential for this technology in textile and industrial wastewater, municipal treatment and other settings where microplastics and co-contaminants defeat conventional approaches," he said.

A step change since 2022

Since 2022, the team expanded the material's capability, capturing particles from nanoscale plastics through larger fibers while also removing dissolved contaminants in the same process.

Testing showed up to 90% removal of mixed contaminants, with complete removal of fibers in textile wastewater.

Scaling up and improving affordability

Output increased fivefold through a room-temperature manufacturing process using fewer costly inputs. Early analysis suggested costs were reduced by about 75% compared with earlier versions. The material can also be reused multiple times, supporting cost-effective use.

"Our goal was to make the technology effective, practical and affordable at scale," Eshtiaghi said. "This includes ensuring the material can be recovered, reused and integrated into existing treatment systems."

More information: Muhammad Haris et al, Scalable room-temperature synthesis of a MOF-based magnetic adsorbent for rapid simultaneous removal of PFAS and micro-nanoplastics, Chemical Engineering Journal (2026). DOI: 10.1016/j.cej.2026.178141

Provided by RMIT University

This story was originally published on Phys.org.
Read full story on Phys.org

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