Shima Jafarzadeh, Yasaman Esmaeili, Moon Paul, Seyedeh Zahra Haeri, Colin J. Barrow, Mina Dokouhaki, Masoumeh Zargar, Minoo Naebe
This study introduces a green, aqueous synthesis approach for NH₂-MIL-101(Cr), avoiding toxic organic solvents while preserving its high crystallinity, porosity (>1000 m 2 /g), and amino functionality. To develop sustainable packaging materials the synthesized MOF was incorporated into sago starch-based bioplastic films across control 0%, 1%, 3%, and 5% treatments. Nanoparticle characterizations via SEM, TEM, FTIR, XRD, and nitrogen adsorption-desorption isotherms confirmed a porous, crystalline structure (100–300 nm) with a surface area exceeding 1000 m 2 /g. Film characterizations using SEM, FTIR, color analysis, tensile testing, TGA, and UV-Vis spectroscopy revealed that the 3% treatment offered the best balance, with tensile strength increasing from 2.15 MPa (control) to 4.61 MPa, thermal stability improving (decomposition onset from 230 °C to 270 °C), and UV shielding enhancing (>83% transmittance at 600 nm).. The 5% treatment achieved the highest tensile strength (4.84 MPa) but showed reduced elongation (45.59% vs. 125.16% in control) due to agglomeration, while 1% provided moderate improvements. These results underscore the 3% treatment as the most suitable for eco-friendly packaging, with future work recommended to optimize MOF dispersion, extend UV analysis, and evaluate biodegradability for industrial scalability. • Green aqueous synthesis of NH₂-MIL-101(Cr) achieved without toxic organic solvents. • Uniform MOF dispersion in starch matrix enhances strength, barrier, and thermal stability. • Optimal 3% MOF loading doubles tensile strength and raises decomposition onset. • UV shielding improved while maintaining high transparency, supporting sustainable packaging applications. • Demonstrates scalable pathway toward eco-friendly packaging using MOF-biopolymer composites.