RT Journal Article T1 Lignin-Based Cationic Hydrogels Incorporating MIL-100(Fe) for Combined Adsorption and Photo-Fenton Degradation of Naproxen Sodium A1 Ranieri, Simone A1 Astolfi, Paola A1 Parlapiano, Marco A1 Sgroi, Massimiliano A1 Ruiz-Salvador, A. Rabdel A1 Ballesteros, María de la Menta A1 Pisani, Michela K1 Water treatment K1 Hydrogel K1 MOF K1 Naproxen K1 Photo-fenton AB The occurrence of persistent pharmaceutical residues, such as nonsteroidal anti-inflammatory drugs (NSAIDs), in aquatic environments requires treatment strategies that combine high removal efficiency with operational practicality. Herein, a hybrid lignin-based cationic hydrogel incorporating the iron-based metal-organic framework MIL-100(Fe) (LS-pAAm-DAC/MIL-100(Fe)) is reported as a multifunctional material for the integrated adsorption and heterogeneous photo-Fenton degradation of naproxen sodium (NPX-Na) in water. The composite is synthesized via in situ radical polymerization, leading to the uniform immobilization of crystalline MIL-100(Fe) within a sustainable, lignin-derived polymer network. Structural and morphological analyses (XRD, ATR-FTIR, SEM/EDS) confirm the preservation of the MOF structure and its homogeneous dispersion throughout the hydrogel matrix. The composite exhibits rapid NPX-Na uptake and enhanced adsorption capacity (39 mg/g) compared with the pristine hydrogel, attributable to combined electrostatic interactions in the cationic network and additional adsorption sites on MIL-100(Fe). Under UVA irradiation in the presence of H2O2, the material promotes complete NPX-Na degradation via a heterogeneous photo-Fenton process, with HPLC/MS evidence of progressive transformation into oxidized phthalic acid-type by-products. Importantly, ICP-OES analysis reveals no detectable iron leaching, demonstrating robust immobilization of MIL-100(Fe) and operational stability. The composite retains substantial adsorption performance over multiple regeneration cycles, highlighting its reusability. Overall, LS-pAAm-DAC/MIL-100(Fe) represents a recoverable and sustainable platform that integrates capture and oxidative degradation of anionic pharmaceuticals, offering promising prospects for advanced water treatment applications. PB ACS YR 2026 FD 2026 LK https://hdl.handle.net/10433/27435 UL https://hdl.handle.net/10433/27435 LA en NO ACS Appl. Eng. Mater. (2026) 4 (6): 3120–3130. NO This work was supported by the European Commission(HORIZON 1.2−Marie Sklodowska-Curie Action, projectVALZEO 10186354). NO Universidad Pablo de Olavide. Departamento de Biología Molecular e Ingeniería Bioquímica DS RIO RD Sep 25, 2026