The tetracycline (TC) contamination in water demands innovative ways that combine adsorption with degradation. To this end, this study develops a core-shell magnetic Fe 3 O 4 @ZIF-8 composite, which functions as a synergistic platform for adsorption and Fenton-like catalysis. The material leverages the high surface area of ZIF-8 (688.28 m 2 /g) and the magnetic responsiveness of Fe 3 O 4 (23.05 emu/g) for easy separation. It exhibits an exceptional TC adsorption capacity of 613.5 mg/g, with kinetics and isotherms best described by pseudo-second-order and Freundlich models, respectively, indicating a chemisorption-driven, multilayer process. The primary mechanisms were identified as π-π interactions, coordination, and hydrogen bonding. Furthermore, the embedded Fe 3 O 4 core enables a Fenton-like reaction with H 2 O 2 , effectively degrading the adsorbed TC. The composite demonstrated remarkable stability, retaining over 80% of its adsorption capacity after five cycles. This work presents a robust and recyclable platform for the integrated adsorption and catalytic degradation of antibiotics. • A magnetically recyclable core-shell Fe₃O₄@ZIF-8 was constructed for synergistic adsorption and catalysis. • It exhibits high TC adsorption (613.5 mg/g) and efficient Fenton-like degradation (93.16%). • It has strong magnetization (23.05 emu/g) for easy separation and good reusability. • Adsorption mechanism involves π-π interaction, coordination, and hydrogen bonding.
Wang et al. (2026) studied this question.