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用于食品包装应用的层压生物聚合物制造的优化:一种可持续的等离子体活化方法。

Optimization of Laminated Bio-Polymer Fabrication for Food Packaging Application: A Sustainable Plasma-Activated Approach.

作者信息

Foli Giacomo, Capelli Filippo, Grande Mariachiara, Tagliabue Stefano, Gherardi Matteo, Minelli Matteo

机构信息

Interdepartmental Centre for Industrial Research-Advanced Mechanics and Materials (CIRI-MAM), University of Bologna-Viale del Risorgimento, 2, 40136 Bologna, Italy.

Department of Civil, Chemical, Environmental, and Materials Engineering (DICAM), University of Bologna, Via Umberto Terracini, 28, 40131 Bologna, Italy.

出版信息

Polymers (Basel). 2024 Jun 28;16(13):1851. doi: 10.3390/polym16131851.

Abstract

The current level of packaging consumption imposes a need to fabricate single-use food packaging with renewable and compostable materials, such as bio-polyesters (e.g., polylactic acid, PLA and polybutylene succinate, PBS) or cellulose, but their use is still problematic. Fabrication of bio-compostable composites can specifically address impeding challenges, and adhesive lamination, achieved with compostable glue, is becoming more and more popular with respect to the less versatile hot lamination. In this context, plasma activation, a chemical-free oxidation technique of a material's surface, is used to increase the affinity of three different biomaterials (cellulose, PLA and PBS) toward a compostable polyurethane adhesive to decrease its amount by gluing bio-polyesters to cellulose. Optical Microscopy reveals activation conditions that do not affect the integrity of the materials, while Water Contact Analyses confirm the activation of the surfaces, with contact angles decreased to roughly 50 deg in all cases. Unexpectedly, ζ-potential analyses and subtractive infrared spectroscopy highlight how the activation performed superficially etches cellulose, while for both PLA and PBS, a general decrease in surface potential and an increase in superficial hydroxyl group populations confirm the achievement of the desired oxidation. Thus, we rationalize continuous activation conditions to treat PLA and PBS and to glue them to neat cellulose. While no beneficial effect is observed with activated PLA, bi-laminate composites fabricated with activated PBS fulfill the benchmark for adhesion strength using less than before, while oxygen permeation analyses exclude plasma-induced etching even at a nanoscale.

摘要

当前的包装消费水平使得有必要用可再生和可堆肥的材料制造一次性食品包装,如生物聚酯(如聚乳酸、PLA和聚丁二酸丁二醇酯、PBS)或纤维素,但它们的使用仍然存在问题。制造生物可堆肥复合材料可以具体解决阻碍性挑战,并且用可堆肥胶水实现的粘合剂层压相对于通用性较差的热层压越来越受欢迎。在这种情况下,等离子体活化作为一种材料表面的无化学氧化技术,用于提高三种不同生物材料(纤维素、PLA和PBS)对可堆肥聚氨酯粘合剂的亲和力,以便通过将生物聚酯粘合到纤维素上来减少其用量。光学显微镜揭示了不影响材料完整性的活化条件,而水接触分析证实了表面的活化,在所有情况下接触角均降至约50度。出乎意料的是,ζ电位分析和减法红外光谱突出表明,表面进行的活化会蚀刻纤维素,而对于PLA和PBS两者,表面电位的普遍降低和表面羟基数量的增加证实了所需氧化的实现。因此,我们合理化了连续活化条件以处理PLA和PBS并将它们粘合到纯纤维素上。虽然活化的PLA未观察到有益效果,但用活化的PBS制造的双层层压复合材料以比以前更少的用量达到了粘合强度基准,而氧气渗透分析排除了即使在纳米尺度下等离子体诱导的蚀刻。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/efcb/11244328/b54e5ac48e26/polymers-16-01851-sch001.jpg

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