Hussain Syed Ammar, Sharma Brajendra K, Qi Phoebe X, Yadav Madhav P, Jin Tony Z
Eastern Regional Research Center, Agricultural Research Service, U.S. Department of Agriculture, 600 E, Mermaid Lane, Wyndmoor, PA 19038, USA.
Polymers (Basel). 2025 Jul 29;17(15):2073. doi: 10.3390/polym17152073.
Antimicrobial food packaging with natural antimicrobials and biodegradable polymers presents an innovative solution to mitigate microbial contamination, prolong freshness, reduce food waste, and alleviate environmental burden. This study developed antimicrobial hemicellulose-based films by incorporating carvacrol (1% and 2%) as a natural antimicrobial agent through micro-emulsification produced by high-pressure homogenization (M-films). For comparison, films with the same formula were constructed using coarse emulsions (C-films) without high-pressure homogenization. These films were investigated for their antimicrobial efficacy, mechanical and barrier properties, and physicochemical attributes to explore their potential as sustainable antimicrobial packaging solutions. The M-films demonstrated superior antimicrobial activity, achieving reductions exceeding 4 Log CFU/mL against , , and , compared to the C-films. High-pressure homogenization significantly reduced the emulsion's particle size, from 11.59 to 2.55 μm, and considerably enhanced the M-film's uniformity, hydrophobicity, and structural quality. Most importantly, the M-films exhibited lower oxygen transmission (35.14 cc/m/day) and water vapor transmission rates (52.12 g/m/day) than the C-films at 45.1 and 65.5 cc/m/day, respectively, indicating superior protection against gas and moisture diffusion. Markedly improved mechanical properties, including foldability, toughness, and bubble-free surfaces, were also observed, making the M-films suitable for practical applications. This study highlights the potential of high-pressure homogenization as a method for enhancing the functional properties of hemicellulose-based films (i.e., M-films). The fabricated films offer a viable alternative to conventional plastic packaging, paving the way for safer and greener solutions tailored to modern industry needs.
含有天然抗菌剂和可生物降解聚合物的抗菌食品包装是一种创新解决方案,可减轻微生物污染、延长保鲜期、减少食物浪费并减轻环境负担。本研究通过高压均质化产生的微乳化作用,将香芹酚(1%和2%)作为天然抗菌剂加入,制备了基于半纤维素的抗菌薄膜(M薄膜)。为作比较,使用未经高压均质化的粗乳液制备了具有相同配方的薄膜(C薄膜)。对这些薄膜的抗菌效果、机械和阻隔性能以及物理化学属性进行了研究,以探索其作为可持续抗菌包装解决方案的潜力。与C薄膜相比,M薄膜表现出卓越的抗菌活性,对[具体菌种1]、[具体菌种2]和[具体菌种3]的抑菌率超过4 Log CFU/mL。高压均质化显著降低了乳液的粒径,从11.59μm降至2.55μm,并显著提高了M薄膜的均匀性、疏水性和结构质量。最重要的是,M薄膜在45.1 cc/m/天和65.5 cc/m/天的条件下,氧气透过率(35.14 cc/m/天)和水蒸气透过率(52.12 g/m/天)分别低于C薄膜,表明其对气体和水分扩散具有卓越的防护性能。还观察到其机械性能显著改善,包括可折叠性、韧性和无气泡表面,这使得M薄膜适用于实际应用。本研究突出了高压均质化作为一种增强基于半纤维素薄膜(即M薄膜)功能特性的方法的潜力。所制备的薄膜为传统塑料包装提供了可行的替代方案,为满足现代工业需求的更安全、更环保的解决方案铺平了道路。