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全纤维素纳米复合材料的水和氧气阻隔性能。

Water and Oxygen Barrier Properties of All-Cellulose Nanocomposites.

机构信息

Adolphe Merkle Institute, Polymer Chemistry and Materials, University of Fribourg, Chemin des Verdiers 4, Fribourg 1700, Switzerland.

出版信息

Biomacromolecules. 2024 Mar 11;25(3):1906-1915. doi: 10.1021/acs.biomac.3c01337. Epub 2024 Feb 23.

Abstract

Hydroxypropyl cellulose (HPC) is potentially interesting as a biobased, rigid food packaging material, but its stiffness and strength are somewhat low, and its water and oxygen transport rates are too high. To improve these characteristics, we investigated nanocomposites of HPC and cellulose nanocrystals (CNCs). These high-aspect-ratio nanoparticles display high stiffness and strength, and their high crystallinity renders them virtually impermeable. Exchanging the counterions of sulfate-ester decorated CNCs with cetyltrimethylammonium ions affords particles that are dispersible in ethanol (CTA.CNC) and allows solvent casting of HPC/CTA.CNC nanocomposite films, which, even at a CTA.CNC content of 90 wt %, are highly transparent. The introduction of CTA.CNC considerably increases the Young's modulus () and upper tensile strength (σ). For example, in the nanocomposite with 90% CTA.CNC, = 7.6 GPa is increased 20-fold and σ = 42.7 MPa is more than doubled in comparison to HPC, whereas the extensibility (1.1%) remains appreciable. Composites with a CTA.CNC content of 70 wt % or less show a lower water vapor permeability (6.4-9.2 × 10 g μm m s Pa) than the neat HPC (1.5 × 10 g μm m s Pa), whereas the oxygen permeability (5.6 × 10-1.3 × 10 cm μm m s Pa) is reduced by 1 order of magnitude compared to HPC (3.2 × 10 cm μm m s Pa). The biobased nanocomposites retain their mechanical integrity at a relative humidity of 75% but readily disintegrate in water.

摘要

羟丙基纤维素(HPC)作为一种具有生物基的刚性食品包装材料具有很大的应用潜力,但它的刚性和强度有些低,水和氧气的传输速率也过高。为了改善这些特性,我们研究了 HPC 和纤维素纳米晶体(CNC)的纳米复合材料。这些高纵横比的纳米颗粒表现出高刚性和高强度,其高结晶度使它们几乎不可渗透。用十六烷基三甲基溴化铵(CTA)交换硫酸酯化 CNC 的抗衡离子,得到可分散在乙醇中的颗粒,从而可以浇铸 HPC/CTA.CNC 纳米复合材料薄膜,即使在 CTA.CNC 含量为 90wt%的情况下,薄膜仍具有很高的透明度。引入 CTA.CNC 大大提高了杨氏模量(E)和上拉伸强度(σ)。例如,在含有 90% CTA.CNC 的纳米复合材料中,E 从 7.6GPa 增加了 20 倍,σ 从 HPC 的 42.7MPa 增加了一倍以上,而伸长率(1.1%)仍相当可观。CTA.CNC 含量为 70wt%或更低的复合材料的水蒸气透过率(6.4-9.2×10-10gμmmsPa)比纯 HPC(1.5×10-10gμmmsPa)低,而氧气透过率(5.6×10-1.3×10-7cmμmmsPa)则比 HPC(3.2×10-7cmμmmsPa)降低了一个数量级。这些生物基纳米复合材料在相对湿度为 75%的情况下仍保持其机械完整性,但在水中很容易分解。

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