Evaluation of in vitro bioactivity and tribological behaviour of sustainable bio-waste-reinforced biodegradable ZK61 hybrid composites for orthopaedic applications
Harshit Kumar, Shashi Bhushan Prasad, Ashish Das, Abdul RahmanBioactivity and tribological behaviour of bone fixation materials are critical determinants of their in vivo performance. Mg-based composites have received considerable interest as biodegradable implant materials owing to their mechanical compatibility with natural bone, which mitigates stress-shielding effects, and their excellent biodegradability, which obviates the need for follow-up surgery in orthopaedic applications. However, the performance of magnesium under service conditions is constrained by its susceptibility to tribological damage. To overcome this limitation, ZK61 Mg-matrix composites are fabricated with hybrid reinforcement – hydroxyapatite (10 wt.%) and eggshell (2.5 wt.%) – using friction stir processing. In this present work, ZK61-10HA-2.5ES Mg-matrix composites are marked in terms of microhardness, wettability, in vitro bioactivity and wear performance. Dry sliding wear performance was assessed using pin-on-disc tests at a load of ∼45 N for 600 seconds. The ZK61-10HA-2.5ES composite exhibited a significantly lower coefficient of friction and wear rate than the base ZK61 alloy, showing superior wear resistance. The scanning electron microscopic micrographs indicated that abrasive wear through micro-ploughing was the predominant wear mechanism, with reduced wear severity in the composite compared with the base alloy. The outcomes of this investigation provide a valuable foundation for the development of next-generation biodegradable composites based on ZK61-10HA-2.5ES for orthopaedic applications.