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Hybrid Graphene-Membrane Systems for Energy-Efficient Water Purification and Disinfection

Zenodo (CERN European Organization for Nuclear Research) 2026
Basanti Ekka

Summary

Scientists are designing a new water treatment system that combines special carbon filters, graphene-based membranes, and UV light to strip out drug residues, "forever chemicals" (PFAS), and microplastics from wastewater—pollutants that regular treatment plants often miss. This matters because these contaminants can build up in rivers and seas (in this case, the Baltic Sea) and eventually make their way back into the water and food we consume, so removing them more effectively could reduce long-term human exposure. Note that this is a proposed pilot project, not yet a proven finished solution—the researchers still need to build and test it to see if it actually h

Study Type Environmental

Latvia's wastewater treatment plants (WWTPs) face mounting challenges from persistent contaminants such as pharmaceuticals, PFAS, and microplastics—pollutants inadequately removed by conventional treatment methods. National studies have found diclofenac and PFOS concentrations exceeding regulatory thresholds, alongside significant microplastic loads in effluents. These contaminants threaten local ecosystems and contribute to the degradation of the Baltic Sea, prompting urgent action in line with the HELCOM Baltic Sea Action Plan. This project proposes a modular, high-efficiency hybrid treatment system integrating three advanced technologies: (1) granular activated carbon (GAC) optimized for PFAS and pharmaceutical adsorption, (2) graphene oxide membranes with nanochannel control for the removal of microplastics and trace organics, and (3) UV-LED photocatalysis for energy-efficient disinfection. Building on prior successful applications in industrial and drinking water treatment, the project aims to design, fabricate, and pilot-test a scalable system in a Latvian WWTP. Methodologies include adsorption and filtration performance assessments, membrane characterization (SEM/AFM), and energy-use benchmarking of the UV-LED system. The integrated prototype targets >90% removal efficiencies, reduced energy costs, and alignment with EU and HELCOM environmental directives. This innovation aims to provide a cost-effective, sustainable solution for upgrading Latvia's municipal wastewater infrastructure and supporting broader regional water quality improvement.

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