Quantum-Driven Degradation Mechanisms for Sustainable Water Treatment in Decentralized Systems
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AI plain-English summaryA single catalyst particle, smaller than a virus, could break apart a "forever chemical" molecule that would otherwise persist in drinking water for centuries. This matters because current water treatment methods struggle to remove emerging pollutants like PFAS, pharmaceuticals, and microplastics. These contaminants accumulate in water supplies, and existing technologies either fail to degrade them or require energy-intensive centralised plants. The project addresses a gap in knowledge: how to selectively break down these pollutants at the molecular level while recovering valuable compounds like nutrients or metals. If successful, the research could enable small-scale, decentralised water treatment systems that work passively—embedded in materials like biochar or soil—rather than requiring large infrastructure. This would make clean water more accessible in rural or underserved communities without expensive treatment plants. The work also includes life cycle analysis and stakeholder engagement with policymakers and communities, so any resulting technology would come with practical guidance on cost, safety, and social acceptance. The project is interdisciplinary but applied: it combines quantum chemistry with environmental engineering to produce a tangible tool for water remediation, not just a theoretical advance.
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