Paulina Haller, Ignacio Pires Quintas, Camila Irabuena, Guillermo Valdomir, Leticia Pérez‐Díaz, Julia Torres, Ignacio Machado, Nicolás Veiga
Dye pollutants from textile and related industries are highly recalcitrant, posing significant environmental and health risks. In this study, we evaluate a family of Fe(III) complexes and their corresponding molecularly imprinted polymers (MIPs) as efficient, green catalysts for the oxidative degradation of representative dyes: methyl orange, methylene blue (MB), and malachite green (MG). In solution studies revealed that the nature of the ligand influences the relative contributions of radical-mediated and high-valent Fe(V)═O oxidation pathways, enabling tunable reactivity. The most active complexes were used as templates to generate water-compatible MIPs that combine adsorption with Fenton-like degradation. The best performing MIPs were those containing the bis(2-pyridylmethyl)amine complex (Fe-BMPA@MIP), prepared either without pH adjustment ( ca. pH 3) or at pH 6. Both achieved 65–98% dye decolorization in 3 h while minimizing iron leaching and converted MB and MG into lower molecular weight products with reduced cytotoxicity. A test in MB-spiked paper-mill effluent further confirmed near-complete decolorization by Fe-BMPA@MIP under realistic conditions. Collectively, these results highlight Fe(III)-complex-imprinted polymers as promising for the design of versatile and efficient pre-treatment platforms that reduce dye pollutant hazards in greener wastewater treatment processes.