可持续纸板包装用静电纺聚琥珀酸丁二烯涂料:结构-性能关系。

IF 4.2 3区 化学 Q2 POLYMER SCIENCE
Allison Vercasson, Cristina Prieto, Sébastien Gaucel, Nathalie Gontard, Valérie Guillard, Hélène Angellier-Coussy, Jose M Lagaron
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引用次数: 0

摘要

生产薄的生物聚合物涂层纸和纸板对于食品包装等广泛应用至关重要,因为它可以保持灵活性,同时减少对环境的影响并增强阻隔性能。本研究研究了静电纺丝生产具有不同结构(即不同层厚度)的聚琥珀酸丁二烯(PBS)涂层纸板。制作了四种不同结构的pbs涂层纸板,呈现出衬底顶部的低聚合物厚度(10至25 μ m),但其特征层(包括浸渍层)的厚度不同。研究了静电纺丝工艺参数(沉积时间、方法(直接或间接))和退火工艺参数对涂布纸板结构的影响。退火压力只降低了涂层纸板的厚度,而静电纺丝法通过影响浸渍层和纸板剩余层的厚度来影响整体结构。通过拉伸试验测试的力学性能在涂层后得到了保持或增强,而某些样品的氧阻隔性能得到了很大的提高。降低浸渍层厚度导致杨氏模量增加(+3至+23%),断裂应力降低(- 40%至-70%),突出了聚合物涂层纸板结构对其机械性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrospun Polybutylene Succinate Coatings for Sustainable Cardboard Packaging: Structure-Property Relationships.

Producing thin biopolymer-coated paper and cardboard is essential for a large range of applications, such as food packaging, as it allows to maintain flexibility while reducing the environmental impact and enhancing barrier properties. This study investigates electrospinning to generate polybutylene succinate (PBS)-coated cardboards with contrasted structures (i.e., different thicknesses of the individual layers). Four contrasted structures of PBS-coated cardboards are produced, presenting low polymer thickness remaining on top of the substrate (10 to 25 µm) but differing in the thickness of their characteristic layers (including the impregnated layer). The effect of the electrospinning parameters (deposition time, method (direct vs indirect)) and annealing parameters on polymer-coated cardboards' structures are investigated. The annealing pressure only reduced the coated cardboard thickness, while the electrospinning method influenced the overall structure by affecting both the thickness of the impregnated layer and of the remaining layer of cardboard. The mechanical properties tested by tensile test are maintained or enhanced after coating while oxygen barrier properties are largely enhanced for some samples. Decreasing the impregnated layer thickness resulted in a Young's modulus increase (+3 to +23%) and a decrease in stress at break (-40 to -70%), highlighting the impact of polymer-coated cardboards's structures on their mechanical properties.

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来源期刊
Macromolecular Rapid Communications
Macromolecular Rapid Communications 工程技术-高分子科学
CiteScore
7.70
自引率
6.50%
发文量
477
审稿时长
1.4 months
期刊介绍: Macromolecular Rapid Communications publishes original research in polymer science, ranging from chemistry and physics of polymers to polymers in materials science and life sciences.
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