Basbasan Angel Jr, Hararak Bongkot, Winotapun Charinee, Wanmolee Wanwitoo, Chinsirikul Wannee, Leelaphiwat Pattarin, Chonhenchob Vanee, Boonruang Kanchana
Department of Packaging and Materials Technology, Faculty of Agro-Industry, Kasetsart University, Bangkok 10900, Thailand.
National Metal and Materials Technology Center, National Science and Technology Development Agency, Pathum Thani 12120, Thailand.
Polymers (Basel). 2023 Feb 16;15(4):989. doi: 10.3390/polym15040989.
The natural abundance, polymer stability, biodegradability, and natural antimicrobial properties of lignin open a wide range of potential applications aiming for sustainability. In this work, the effects of 1% (/) softwood kraft lignin nanoparticles (SLNPs) on the physicochemical properties of polybutylene succinate (PBS) composite films were investigated. Incorporation of SLNPs into neat PBS enhanced from 354.1 °C to 364.7 °C, determined through TGA, whereas increased from -39.1 °C to -35.7 °C while no significant change was observed in and crystallinity, analyzed through DSC. The tensile strength of neat PBS increased, to 35.6 MPa, when SLNPs were added to it. Oxygen and water vapor permeabilities of PBS with SLNPs decreased equating to enhanced barrier properties. The good interactions among SLNPs, thymol, and PBS matrix, and the high homogeneity of the resultant PBS composite films, were determined through FTIR and FE-SEM analyses. This work revealed that, among the PBS composite films tested, PBS + 1% SLNPs + 10% thymol showed the strongest microbial growth inhibition against and , both in vitro, through a diffusion method assay, and in actual testing on active packaging of mango fruit (cultivar "Nam Dok Mai Si Thong"). SLNPs could be an attractive replacement for synthetic substances for enhancing polymer properties without compromising the biodegradability of the resultant material, and for providing antimicrobial functions for active packaging applications.
木质素的天然丰度、聚合物稳定性、生物降解性和天然抗菌性能为可持续发展带来了广泛的潜在应用。在本研究中,考察了1%(/)软木硫酸盐木质素纳米颗粒(SLNPs)对聚丁二酸丁二醇酯(PBS)复合薄膜物理化学性能的影响。通过热重分析(TGA)测定,将SLNPs加入纯PBS中后,其热分解温度从354.1℃提高到364.7℃;通过差示扫描量热法(DSC)分析,玻璃化转变温度从-39.1℃升高到-35.7℃,而熔点和结晶度没有显著变化。当向纯PBS中添加SLNPs时,其拉伸强度提高到35.6MPa。含有SLNPs的PBS的氧气和水蒸气渗透率降低,这等同于阻隔性能增强。通过傅里叶变换红外光谱(FTIR)和场发射扫描电子显微镜(FE-SEM)分析确定了SLNPs、百里香酚和PBS基质之间的良好相互作用,以及所得PBS复合薄膜的高均匀性。这项工作表明,在所测试的PBS复合薄膜中,PBS + 1% SLNPs + 10%百里香酚在体外通过扩散法测定以及在芒果果实(品种“Nam Dok Mai Si Thong”)活性包装的实际测试中,对大肠杆菌和金黄色葡萄球菌均表现出最强的微生物生长抑制作用。SLNPs可能是一种有吸引力的合成物质替代品,可在不影响所得材料生物降解性的情况下增强聚合物性能,并为活性包装应用提供抗菌功能。