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Analysis of the Porous Architecture and Properties of Anisotropic Nanocellulose Foams: A Novel Approach to Assess the Quality of Cellulose Nanofibrils (CNFs)

机译:各向异性纳米纤维素泡沫多孔建筑与性质分析:一种评估纤维素纳米纤维质量的新方法(CNFS)

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摘要

Cellulose nanofibrils (CNFs) are a unique nanomaterial because of their abundant, renewable, and biocompatible origin. Compared with synthetic nanoparticles, CNFs are commonly produced from cellulose fibers (e.g., wood pulp) by repetitive high-shear mechanical disintegration. Yet, this process is still highly demanding in energy and costly, slowing down the large-scale production and commercialization of CNFs. Reducing the energy consumption during fibers fibrillation without using any chemical or enzymatic pretreatments while sustaining the CNF quality is challenging. Here, we show that the anisotropic properties of the CNF foams are directly connected to the degree of nanofibrillation of the cellulose fibers. CNFs were produced from wood pulps using a grinder at increasing specific energy consumptions. The anisotropic CNF foams were made by directional ice templating. The porous architecture, the compressive behavior of the foams, and the CNF alignment in the foam cell walls were correlated to the degree of fibrillation. A particular value of specific energy consumption was identified with respect to the highest obtained foam properties and CNF alignment. This value indicated that the optimal degree of fibrillation, and thus CNF quality, was achieved for the studied cellulose pulp. Our approach is a straightforward tool to evaluate the CNF quality and a promising method for the benchmarking of different CNF grades.
机译:纤维素纳米纤维(CNFS)是一种独特的纳米材料,因为它们丰富,可再生和生物相容性起源。与合成纳米颗粒相比,通过重复的高剪切机械崩解,CNF通常由纤维素纤维(例如,木浆)产生。然而,这种过程仍然非常苛刻,昂贵,昂贵,减缓了CNFS的大规模生产和商业化。在维持CNF质量的同时减少纤维颤动期间的能量消耗而不使用任何化学或酶预处理是具有挑战性的。这里,我们表明CNF泡沫的各向异性特性直接连接到纤维素纤维的纳米纤维的程度。使用研磨机在增加特定能量消耗时从木浆中产生CNF。通过定向冰模板制成各向异性CNF泡沫。多孔结构,泡沫的压缩行为以及泡沫细胞壁中的CNF对准与原纤化程度相关。关于最高获得的泡沫性能和CNF比对鉴定了特定能量消耗的特定值。该值表明,对于所研究的纤维素纸浆,实现了最佳的原纤化程度,从而实现了CNF质量。我们的方法是评估CNF质量的直接工具,以及用于不同CNF等级的基准测试的有希望的方法。

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