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Nanocomposites for Sustainable Environmental Remediation: Innovations in Water and Air Purification

Aug 2026 · International journal of computer information systems and industrial management applications · Vol 18, pp. 192-202 · 0 citations

Abstract

The increasing deterioration of environmental quality caused by rapid industrialization, urban expansion, intensive agricultural practices, and unsustainable resource utilization has intensified the need for advanced materials capable of addressing complex pollution challenges in both aquatic and atmospheric environments. Conventional remediation technologies frequently encounter limitations such as low pollutant selectivity, incomplete contaminant removal, high operational costs, secondary waste generation, and limited reusability, thereby restricting their long-term effectiveness in achieving sustainable environmental management. In this context, nanocomposite materials have emerged as promising multifunctional platforms owing to their unique physicochemical properties, including high surface area, tunable porosity, enhanced catalytic activity, superior adsorption capacity, and improved mechanical and chemical stability. This study investigates recent innovations in nanocomposite-based technologies for sustainable environmental remediation, with particular emphasis on water and air purification applications. The proposed approach examines the integration of metal and metal oxide nanoparticles, carbon-based nanomaterials, polymeric matrices, bio-derived materials, and hybrid nanostructures to develop highly efficient remediation systems capable of removing a broad spectrum of contaminants, including heavy metals, organic dyes, pharmaceutical residues, volatile organic compounds, particulate matter, pathogenic microorganisms, and hazardous gaseous pollutants. The study further evaluates the synergistic interactions between nanocomposite constituents that enhance adsorption efficiency, photocatalytic degradation, antimicrobial performance, and pollutant mineralization under varying environmental conditions. Consideration is also given to material synthesis strategies that promote sustainability through reduced chemical consumption, energy-efficient fabrication processes, and the incorporation of renewable or biodegradable components. Performance assessment focuses on key parameters such as contaminant removal efficiency, adsorption kinetics, catalytic stability, regeneration capability, durability, selectivity, operational lifespan, and environmental compatibility. The findings indicate that nanocomposite materials significantly outperform many conventional remediation techniques by providing faster reaction rates, higher contaminant removal capacities, improved structural stability, and greater adaptability to diverse environmental conditions. Furthermore, the incorporation of recyclable and reusable nanocomposite systems contributes to minimizing operational costs and reducing secondary environmental impacts associated with remediation processes. Despite challenges related to large-scale production, long-term environmental safety, material recovery, and regulatory standardization, continuous advances in nanomaterial engineering and green synthesis techniques are expanding the practical applicability of nanocomposites in environmental protection. The study concludes that innovative nanocomposite technologies offer a robust and sustainable pathway for addressing contemporary pollution challenges while supporting cleaner water resources, improved air quality, and environmentally responsible remediation practices. By combining advanced material design with sustainable engineering principles, nanocomposites have the potential to play a transformative role in future environmental management strategies and the development of resilient pollution control systems.

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