The use of kraft lignin to enhance nanocellulose film properties.

IF 3.1 3区 化学 Q2 CHEMISTRY, PHYSICAL
Raquel Martín-Sampedro, Antonio Ovejero-Pérez, Mercedes Oliet, Virginia Alonso, Francisco Rodríguez, David Ibarra, María E Eugenio
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Abstract

The pressing need to replace petroleum-based plastics with renewable and biodegradable alternatives has sparked growing interest in biopolymers derived from lignocellulosic biomass as sustainable solutions. Among these, nanocellulose stands out as a versatile product capable of forming strong, transparent, and flexible films. However, these films lack active properties like antioxidant, antibacterial and UV-shielding capacity, essential for applications such as food packaging. To address this, incorporating lignin, a byproduct of lignocellulosic biorefineries, offers a promising route to enhance the functionality of nanocellulose films. In line with this idea, this work studies the incorporation of kraft lignin into nanocellulose films by two different protocols: the first protocol involves directly mixing a cellulose nanofiber (CNF) suspension with an aqueous lignin suspension; the second protocol uses lignin dissolved in acetone : water (9 : 1) which is transformed into lignin nanoparticles (LNPs) via solvent shifting when mixed with the aqueous CNF suspension. The resulting suspensions of CNFs and lignin were subsequently used to produce casting films. It was found that incorporating lignin into the CNF film not only conferred UV-shielding capacity, but also enhanced barrier properties without compromising the mechanical properties, particularly when lignin was introduced as LNPs (even at 10-20% LNP content). However, adding bulk lignin at a high concentration (20%) negatively affected water vapor permeability and mechanical properties. Antioxidant and antibacterial capacities correlated with lignin content, showing greater enhancement when lignin was present as nanoparticles compared to bulk lignin. These results indicate that forming LNPs in situ within the CNF suspension is a more effective approach to optimize the properties of nanocellulose films. Thus, the obtained films presented good active properties with mechanical properties comparable to those of traditional plastics, but significantly lower barrier properties.

利用硫酸盐木质素增强纳米纤维素膜的性能。
迫切需要用可再生和可生物降解的替代品取代石油基塑料,这激发了人们对木质纤维素生物质衍生的生物聚合物作为可持续解决方案的兴趣。其中,纳米纤维素作为一种多功能产品脱颖而出,能够形成坚固、透明和灵活的薄膜。然而,这些薄膜缺乏抗氧化、抗菌和防紫外线能力等活性特性,这对食品包装等应用至关重要。为了解决这个问题,结合木质素,木质纤维素生物炼制的副产品,提供了一个有希望的途径来增强纳米纤维素膜的功能。根据这一想法,本工作通过两种不同的方案研究了硫酸盐木质素在纳米纤维素薄膜中的掺入:第一种方案涉及直接将纤维素纳米纤维(CNF)悬浮液与木质素水悬浮液混合;第二种方案使用溶解在丙酮:水(9:1)中的木质素,当与含水CNF悬浮液混合时,通过溶剂转移转化为木质素纳米颗粒(LNPs)。所得到的CNFs和木质素悬浮液随后被用于生产铸造膜。研究发现,在CNF薄膜中加入木质素不仅具有屏蔽紫外线的能力,而且在不影响机械性能的情况下增强了阻隔性能,特别是当木质素作为LNP引入时(即使LNP含量为10-20%)。然而,高浓度(20%)添加散装木质素对水蒸气渗透性和力学性能有负面影响。抗氧化和抗菌能力与木质素含量相关,与散装木质素相比,木质素以纳米颗粒形式存在时表现出更大的增强。这些结果表明,在CNF悬浮液中原位形成LNPs是优化纳米纤维素膜性能的一种更有效的方法。因此,获得的薄膜具有良好的活性性能,其机械性能与传统塑料相当,但屏障性能明显较低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Faraday Discussions
Faraday Discussions 化学-物理化学
自引率
0.00%
发文量
259
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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