This study developed polylactic acid (PLA) composites reinforced with chitosan (CS) and sugarcane bagasse‐derived fillers, including untreated sugarcane bagasse (SCB), ultrasound‐assisted‐alkaline‐treated sugarcane bagasse (UASCB), and ultrasound‐assisted‐alkaline‐acid‐treated (UAASCB). The objective was to improve the structural and functional properties of PLA composites through fiber treatment and chitosan incorporation. Fiber treatments significantly increased the cellulose content and crystallinity of SCB, with the best result reaching 71.7% cellulose and 91.36% crystallinity after 30 min of 4 wt% NaOH treatment followed by 45 min of 2 N sulfuric acid treatment. Composite characterization was carried out using FTIR, XRD, SEM, and tensile testing. In this study, pure PLA showed a tensile strength of MPa and a tensile modulus of MPa. The PLA–CS–UASCB composite showed a comparable tensile strength () MPa with a slight increase in tensile modulus () MPa. In contrast, the PLA–CS–UAASCB composite displayed lower tensile strength () MPa and tensile modulus () MPa. The PLA–CS–UASCB composite demonstrated the highest antimicrobial activity, reducing the growth of
E. coli
by 20.28% and
S. aureus
by 28.33%. This research offers a promising foundation for further development of sustainable PLA‐based biocomposites tailored for multifunctional and environmentally friendly applications.
A. Fatmawati, Athalia Beatrice Molianto, T. Pranata et al.· Applied Research· 0 citations
This study develops an industrially applicable composite by combining polylactic acid (PLA) with chitosan (CS) for antimicrobial properties and microcrystalline cellulose (MCC) for enhanced mechanical performance. Mechanical behaviour, microstructure, and morphology were analysed using tensile tests, scanning electron microscopy (SEM), and X‐ray diffraction (XRD). Antibacterial activity was evaluated against Gram‐positive and Gram‐negative bacteria. The samples were prepared by heating thermoplastic polylactic acid (PLA) and subsequently molding them into test specimens in accordance with ASTM D638. Results showed that adding MCC increased tensile strength and modulus, with the highest values in PLA (A) containing 2% MCC and 2% CS. Higher MCC content caused agglomeration, reducing mechanical properties. SEM and XRD revealed that MCC increased crystallinity, while CS decreased it. PLA/MCC/CS composites demonstrated stronger antibacterial activity than pure PLA. The findings indicate that the composites offer both improved mechanical properties and enhanced antibacterial function, making them promising for biomedical applications. Further optimization is needed to improve interfacial adhesion and reinforcement dispersion.
Ivan Antônio, Natalia Suseno, E. Savitri et al.· Macromolecular Symposia· 0 citations