Development of a methodology for the production of nanostructured polymeric biocomposites with cellulose nanocrystals

IF 2.4 3区 农林科学 Q1 FORESTRY European Journal of Wood and Wood Products Pub Date : 2024-12-20 DOI:10.1007/s00107-024-02175-y
Paulo R. C. Marcelino, Eduarda C. R. Melo, Jordão C. Moulin, Danilo W. Silva, Vaniele B. dos Santos, Michel P. Oliveira
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Abstract

The increasing utilization of polymeric composites stands out as a versatile solution across various engineering fields. To meet the demand for more sustainable and efficient materials, research has been exploring natural and biodegradable sources for the fabrication of these new materials. Among these alternatives, green polyurethane (GPU), derived from castor oil (Ricinus communis), shines due to its sustainability, low toxicity, and abundant availability. However, GPU exhibits limitations in mechanical strength, prompting studies on composites reinforced with synthetic, vegetable fibers, and particles. In this context, cellulose nanocrystals (CNC) emerge as promising due to their rigidity and mechanical strength. However, their industrial production through aqueous dispersion presents challenges in application to polymeric matrices due to resin hydrophobicity. This study proposes a new methodology to extract and incorporate CNC into composites, aiming to characterize the physical, chemical, mechanical, and morphological aspects of a composite material formed by GPU reinforced with different proportions of CNC (0%, 1%, 2%, and 3%). The results demonstrate a significant improvement in mechanical strength, with a 262% increase upon adding 3% CNC reinforcement. In terms of thermal resistance, there was a lower mass loss and alterations in the initial degradation temperature range observed. This study contributes to the understanding of composite properties and their potential in various applications.

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纤维素纳米晶体生产纳米结构聚合物生物复合材料方法的发展
聚合物复合材料的应用日益广泛,成为各种工程领域的通用解决方案。为了满足对更可持续和高效材料的需求,研究人员一直在探索用于制造这些新材料的天然和可生物降解来源。在这些替代品中,从蓖麻油(Ricinus communis)中提取的绿色聚氨酯(GPU)因其可持续性、低毒性和丰富的可用性而备受瞩目。然而,GPU在机械强度方面表现出局限性,这促使人们对合成纤维、植物纤维和颗粒增强的复合材料进行研究。在这种情况下,纤维素纳米晶体(CNC)由于其刚性和机械强度而成为有前途的材料。然而,由于树脂的疏水性,它们通过水分散的工业生产在应用于聚合物基质方面提出了挑战。本研究提出了一种提取CNC并将其纳入复合材料的新方法,旨在表征不同比例CNC(0%, 1%, 2%和3%)增强GPU形成的复合材料的物理,化学,机械和形态学方面。结果表明,机械强度显著提高,添加3%的CNC增强后,机械强度提高了262%。在热阻方面,在初始降解温度范围内观察到较低的质量损失和变化。这项研究有助于了解复合材料的性能及其在各种应用中的潜力。
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来源期刊
European Journal of Wood and Wood Products
European Journal of Wood and Wood Products 工程技术-材料科学:纸与木材
CiteScore
5.40
自引率
3.80%
发文量
124
审稿时长
6.0 months
期刊介绍: European Journal of Wood and Wood Products reports on original research and new developments in the field of wood and wood products and their biological, chemical, physical as well as mechanical and technological properties, processes and uses. Subjects range from roundwood to wood based products, composite materials and structural applications, with related jointing techniques. Moreover, it deals with wood as a chemical raw material, source of energy as well as with inter-disciplinary aspects of environmental assessment and international markets. European Journal of Wood and Wood Products aims at promoting international scientific communication and transfer of new technologies from research into practice.
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