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木质素增强木质纤维素复合材料综述:提高耐火性并减少甲醛排放

A comprehensive review of lignin-reinforced lignocellulosic composites: Enhancing fire resistance and reducing formaldehyde emission.

作者信息

Iswanto Apri Heri, Lee Seng Hua, Hussin M Hazwan, Hamidon Tuan Sherwyn, Hajibeygi Mohsen, Manurung Harisyah, Solihat Nissa Nurfajrin, Nurcahyani Puji Rahmawati, Lubis Muhammad Adly Rahandi, Antov Petar, Savov Viktor, Kristak Lubos, Kawalerczyk Jakub, Osvaldová Linda Makovická, Farid Samina, Selvasembian Rangabhashiyam, Fatriasari Widya

机构信息

Department of Forest Products, Faculty of Forestry, Universitas Sumatera Utara, Kampus USU 2 Kwala Bekala, Deli Serdang 20353, North Sumatra, Indonesia.

Department of Wood Industry, Faculty of Applied Sciences, Universiti Teknologi MARA (UiTM), Cawangan Pahang Kampus Jengka, 26400 Bandar Tun Razak, Malaysia.

出版信息

Int J Biol Macromol. 2024 Dec;283(Pt 3):137714. doi: 10.1016/j.ijbiomac.2024.137714. Epub 2024 Nov 19.

Abstract

The rising environmental concerns and the growing demand for renewable materials have surged across various industries. In this context, lignin, being a plentiful natural aromatic compound that possesses advantageous functional groups suitable for utilization in biocomposite systems, has gained notable attention as a promising and sustainable alternative to fossil-derived materials. It can be obtained from lignocellulosic biomass through extraction via various techniques, which may cause variability in its thermal, mechanical, and physical properties. Due to its excellent biocompatibility, eco-friendliness, and low toxicity, lignin has been extensively researched for the development of high-value materials including lignin-based biocomposites. Its aromatic properties also allow it to successfully substitute phenol in the production of phenolic resin adhesives, resulting in decreased formaldehyde emission. This review investigated and evaluated the role of lignin as a green filler in lignin-based lignocellulosic composites, aimed at enhancing their fire retardancy and decreasing formaldehyde emission. In addition, relevant composite properties, such as thermal properties, were investigated in this study. Markedly, technical challenges, including compatibility with other matrix polymers that are influenced by limited reactivity, remain. Some impurities in lignin and various sources of lignin also affect the performance of composites. While lignin utilization can address certain environmental issues, its large-scale use is limited by both process costs and market factors. Therefore, the exact mechanism by which lignin enhances flame retardancy, reduces formaldehyde emissions, and improves the long-term durability of lignocellulosic composites under various environmental conditions remains unclear and requires thorough investigation. Life cycle analysis and techno-economic analysis of lignin-based composites may contribute to understanding the overall influence of systems not only at the laboratory scale but also at a larger industrial scale.

摘要

环境问题日益受到关注,各行业对可再生材料的需求也在不断增长。在此背景下,木质素作为一种丰富的天然芳香族化合物,具有适合在生物复合材料体系中利用的有利官能团,作为化石衍生材料的一种有前景的可持续替代品而备受关注。它可以通过各种技术从木质纤维素生物质中提取得到,这可能导致其热性能、机械性能和物理性能存在差异。由于其优异的生物相容性、生态友好性和低毒性,木质素已被广泛研究用于开发包括木质素基生物复合材料在内的高价值材料。其芳香特性还使其能够在酚醛树脂胶粘剂的生产中成功替代苯酚,从而减少甲醛排放。本综述研究并评估了木质素作为绿色填料在木质素基木质纤维素复合材料中的作用,旨在提高其阻燃性并减少甲醛排放。此外,本研究还考察了相关的复合材料性能,如热性能。值得注意的是,技术挑战依然存在,包括与其他基体聚合物的相容性受到反应活性有限的影响。木质素中的一些杂质以及木质素的各种来源也会影响复合材料的性能。虽然木质素的利用可以解决某些环境问题,但其大规模应用受到工艺成本和市场因素的限制。因此,木质素在各种环境条件下增强阻燃性、减少甲醛排放以及提高木质纤维素复合材料长期耐久性的确切机制仍不清楚,需要深入研究。木质素基复合材料的生命周期分析和技术经济分析可能有助于不仅在实验室规模而且在更大的工业规模上理解系统的整体影响。

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