Sugar palm (Arenga p innata) thermoplastic starch nanocomposite films reinforced with nanocellulose

Q2 Physics and Astronomy Physical Sciences Reviews Pub Date : 2023-05-09 DOI:10.1515/psr-2022-0031
A. Nazrin, A. S. Norfarhana, R. A. Ilyas, S. M. Sapuan, A. Khalina, R. Syafiq, M. Hamid, C. S. Hassan, I. Idris, P. S. Khoo, A. H. Nordin, H. S. N. Hawanis, M. L. Sanyang
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Abstract

Abstract The growing consciousness about global environmental concerns, particularly landfills, in conjunction with the rapid use of petroleum-based plastics, is a key factor behind the use of natural and biodegradable polymers in short-life applications like food packaging, container, and tray. Sugar palm stem is a biomass that has proven the potential to produce biodegradable polymers such as sugar palm starch. Nevertheless, their applications were limited due to their low tensile strength and excessive hydrophilicity. Plasticization using polyols, reinforcement with sugar palm fiber, cellulose, microcrystalline cellulose, or nanocellulose, blending with thermoplastic polymer, and addition of essential oils has been used to maximize the functional qualities of the starch biopolymer. As the content of plasticizers grew, the glass transition temperature and water absorption ability decreased. Furthermore, the addition of sugar palm nanocellulose to sugar palm starch improves the performances of sugar palm starch-based films as a packaging material. Addition of essential oil contributes to antibacterial properties and slightly improved tensile strength of the film. A comprehensive understanding on the interaction of starch-based biodegradable polymer and nanocellulose constituents for enhancing the physico-chemical properties of starch-based films is prerequisite for researchers in the design of industrial products with enhanced functional attributes. To address the knowledge gap, more studies including the reinforcement of new types of biodegradable polymer and nanocellulose derived from natural sources should be conducted in order to continually populate the database for research purposes.
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糖棕榈(Arenga p innata)热塑性淀粉纳米复合膜增强纳米纤维素
对全球环境问题的日益关注,特别是垃圾填埋场,与石油基塑料的快速使用相结合,是在食品包装、容器和托盘等短寿命应用中使用天然和可生物降解聚合物的关键因素。糖棕榈茎是一种生物质,已被证明有潜力生产可生物降解的聚合物,如糖棕榈淀粉。然而,由于其抗拉强度低和过度亲水性,其应用受到限制。使用多元醇塑化,用糖棕榈纤维、纤维素、微晶纤维素或纳米纤维素增强,与热塑性聚合物共混,并添加精油,以最大限度地提高淀粉生物聚合物的功能品质。随着增塑剂含量的增加,玻璃化转变温度和吸水能力降低。此外,在糖棕榈淀粉中加入糖棕榈纳米纤维素可以提高糖棕榈淀粉基薄膜作为包装材料的性能。添加精油有助于抗菌性能,并略微提高薄膜的拉伸强度。全面了解淀粉基可生物降解聚合物和纳米纤维素组分之间的相互作用,以增强淀粉基薄膜的物理化学性能,是研究人员设计增强功能属性的工业产品的先决条件。为了解决知识差距,应该进行更多的研究,包括加强新型生物可降解聚合物和天然来源的纳米纤维素,以便不断填充研究目的的数据库。
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来源期刊
Physical Sciences Reviews
Physical Sciences Reviews MULTIDISCIPLINARY SCIENCES-
CiteScore
2.40
自引率
0.00%
发文量
173
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