Poly(butylene succinate-co-adipate)/poly(hydroxybutyrate) blend films and their thermal, mechanical and gas barrier properties

Q2 Materials Science Polymers from Renewable Resources Pub Date : 2022-06-29 DOI:10.1177/20412479221112176
Enni Luoma, Teijo Rokkonen, Amélie Tribot, K. Nättinen, Jussi Lahtinen
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引用次数: 4

Abstract

Depleting fossil resources and plastic pollution have generated an increasing demand for development of renewable and biodegradable polymers. Among other applications, packaging films are at the forefront of the scene. Poly(butylene succinate-co-adipate) (PBSA) is an interesting biopolymer due to its flexibility and good processability. However, its poor barrier properties limit the range of applications. On the contrary, poly(hydroxybutyrate) (PHB) biopolymer reveals good barrier performance, as well as stiffness and fast biodegradation rate. However, PHB drawbacks are its brittleness and difficult processability. By physical blending approach, a solution was delivered to overcome the shortcomings of these biopolymers, resulting in tailored properties of the films. PHB improved barrier performance of the blend film while flexible PBSA contributed to easier processability and better ductility. In this study, biobased and biodegradable blend films were produced in pilot-scale. The effects of PBSA/PHB blending were extensively studied by tensile testing, water and oxygen barrier testing, and thermal analysis. PBSA/PHB blend films exhibited improved Young’s modulus in comparison to neat PBSA. With 50 wt% PHB content, modulus of blend film was increased by 554% compared to pure PBSA film. The ductility of blend films decreased as a function of PHB content, becoming completely brittle at 50 wt%. It was found that barrier properties of PBSA/PHB films improved in comparison to neat PBSA. Oxygen transmission test results showed that oxygen permeability decreased as a function of PHB content. Similar trend was observed with water vapour permeation properties.
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聚丁二酸丁二醇酯-共己二酸酯/聚羟基丁酸酯共混膜及其热、机械和阻气性能
化石资源的枯竭和塑料污染对可再生和可生物降解聚合物的发展产生了越来越大的需求。在其他应用中,包装薄膜处于最前沿。由于其柔韧性和良好的可加工性,聚丁二酸丁二酸酯(PBSA)是一种令人感兴趣的生物聚合物。然而,其较差的阻隔性能限制了其应用范围。相反,聚羟基丁酸酯(PHB)生物聚合物具有良好的阻隔性能、硬度和快速的生物降解速率。然而,PHB的缺点是其脆性和难加工性。通过物理混合的方法,一种解决方案可以克服这些生物聚合物的缺点,从而实现薄膜的定制特性。PHB提高了共混膜的阻隔性能,而柔性PBSA提高了共混膜的加工性和延展性。在这项研究中,生物基和可生物降解共混膜在中试规模生产。通过拉伸测试、水阻和氧阻测试以及热分析,广泛研究了PBSA/PHB共混的效果。与纯PBSA相比,PBSA/PHB共混膜的杨氏模量有所提高。当PHB含量为50 wt%时,共混膜的模量比纯PBSA膜提高了554%。共混膜的延展性随PHB含量的增加而降低,在50%时完全变脆。结果表明,与纯PBSA相比,PBSA/PHB薄膜的阻挡性能有所提高。氧透射试验结果表明,氧通透性随PHB含量的增加而降低。水蒸气渗透特性也有类似的变化趋势。
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来源期刊
Polymers from Renewable Resources
Polymers from Renewable Resources Materials Science-Polymers and Plastics
CiteScore
3.50
自引率
0.00%
发文量
15
期刊介绍: Polymers from Renewable Resources, launched in 2010, publishes leading peer reviewed research that is focused on the development of renewable polymers and their application in the production of industrial, consumer, and medical products. The progressive decline of fossil resources, together with the ongoing increases in oil prices, has initiated an increase in the search for alternatives based on renewable resources for the production of energy. The prevalence of petroleum and carbon based chemistry for the production of organic chemical goods has generated a variety of initiatives aimed at replacing fossil sources with renewable counterparts. In particular, major efforts are being conducted in polymer science and technology to prepare macromolecular materials based on renewable resources. Also gaining momentum is the utilisation of vegetable biomass either by the separation of its components and their development or after suitable chemical modification. This journal is a valuable addition to academic, research and industrial libraries, research institutions dealing with the use of natural resources and materials science and industrial laboratories concerned with polymer science.
期刊最新文献
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