Researchers test two methods to destroy forever chemicals

Scientists at a German research center have developed two experimental techniques that show promise in breaking down PFAS compounds in water.

Researchers at the Helmholtz-Zentrum Dresden-Rossendorf are testing hydrodynamic cavitation and cold atmospheric plasma to degrade per- and polyfluoroalkyl substances, or PFAS. The first method generates vapor bubbles that collapse under pressure, exposing the chemicals to extreme heat and reactive molecules. The second uses plasma at the water surface combined with gas bubbles to bring PFAS to the treatment zone.

Experiments focused on perfluorooctane sulfonate, or PFOS. Cavitation degraded about 37 percent of the compound in tap water. Plasma treatment nearly eliminated both long-chain and short-chain PFAS while releasing roughly 35 percent of the bound fluorine.

Analyses by the Helmholtz Centre for Environmental Research confirmed the breakdown and fluoride release. The team aims to raise degradation rates above 80 percent and is exploring a combined system to improve efficiency.

The projects receive funding from the Helmholtz Association and the European Union. Further tests are examining energy use and potential byproducts.

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Scientists at the Helmholtz-Zentrum Dresden-Rossendorf have developed two procedures to break down persistent PFAS chemicals in water, with tests showing promising degradation of PFOS.

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Researchers have found that hydrogen radicals generated by intense ultraviolet light can degrade PFAS forever chemicals. The discovery, led by a team at Aarhus University, points to a potential path for destroying these persistent pollutants rather than merely removing them from water.

A new study shows that water confined in tiny spaces is not inherently more reactive than bulk water. Instead, high pressures that develop naturally inside the spaces explain most observed changes in chemistry.

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Researchers at the University of Adelaide have devised a solar-powered process to transform plastic waste into clean hydrogen fuel and other chemicals. The technique, known as solar-driven photoreforming, uses sunlight and photocatalysts to break down plastics at low temperatures. Early experiments show promising hydrogen yields and system stability.

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