3B's Research Group, I3Bs-Research Institute on Biomaterials, Biodegradables and Biomimetics, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, University of Minho, AvePark, Parque de Ciência e Tecnologia, Zona Industrial da Gandra, Barco, 4805-017 Guimarães, Portugal.
ICVS/3B's-PT Government Associate Laboratory, 4806-909 Guimarães, Portugal.
Molecules. 2023 Jan 18;28(3):990. doi: 10.3390/molecules28030990.
The demand for bio-based and safer composite materials is increasing due to the growth of the industry, human population, and environmental concerns. In this framework, sustainable and safer cork-polymer composites (CPC), based on green low-density polyethylene (LDPE) were developed using melt-based technologies. Chitosan and polyethylene-graft-maleic anhydride (PE-g-MA) were employed to enhance the CPC's properties. The morphology, wettability, mechanical, thermal, and antibacterial properties of the CPC against () and () were examined. The CPC showed improved stiffness when compared with that of the LDPE matrix, preferably when combined with chitosan and PE-g-MA (5 wt. %), reinforcing the stiffness (58.8%) and the strength (66.7%). Chitosan also increased the composite stiffness and strength, as well as reduced the surface hydrophilicity. The CPCs' antibacterial activity revealed that cork significantly reduces the biofilm on the polymer matrix. The highest biofilm reduction was found with CPC containing cork and 5 wt. % chitosan for both (54% reduction) and (36% reduction), confirming their potential to extend the lifespan of products for packaging and healthcare, among other applications. This work leads to the understanding of the factors that influence biofilm formation in cork composites and provides a strategy to reinforce their behavior using chitosan.
由于行业、人口和环境问题的增长,对生物基和更安全的复合材料的需求不断增加。在此框架下,采用熔融基技术,开发了基于绿色低密度聚乙烯(LDPE)的可持续和更安全的软木-聚合物复合材料(CPC)。壳聚糖和聚乙烯接枝马来酸酐(PE-g-MA)被用来提高 CPC 的性能。研究了 CPC 对 ()和 ()的形态、润湿性、机械、热和抗菌性能。与 LDPE 基体相比,CPC 表现出更好的刚度,特别是与壳聚糖和 PE-g-MA(5wt.%)结合时,增强了刚度(58.8%)和强度(66.7%)。壳聚糖还提高了复合材料的刚度和强度,同时降低了表面亲水性。CPC 的抗菌活性表明,软木显著减少了聚合物基质上的生物膜。对于这两种细菌(分别减少 54%和 36%),含有软木和 5wt.%壳聚糖的 CPC 的生物膜减少最多,证实了它们在包装和医疗保健等应用中延长产品寿命的潜力。这项工作有助于了解影响软木复合材料中生物膜形成的因素,并提供了一种使用壳聚糖增强其性能的策略。