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基于离子液体/水加工的纳米结构纤维素-木葡聚糖共混物。

Nanostructured cellulose-xyloglucan blends via ionic liquid/water processing.

机构信息

UR1268 Biopolymères Interactions Assemblages, INRA, F-44300 Nantes, France.

Department of Mechanical Engineering, University of Canterbury, Private Bag 4800, Christchurch 8140, New Zealand.

出版信息

Carbohydr Polym. 2017 Jul 15;168:163-172. doi: 10.1016/j.carbpol.2017.03.080. Epub 2017 Mar 27.

Abstract

In this work, the properties of cellulose (CE)/xyloglucan (XG) biopolymer blends are investigated, taking inspiration from the outstanding mechanical properties of plant cell walls. CE and XG were first co-solubilized in an ionic liquid, 1-ethyl-3-methylimidazolium acetate, in order to blend these biopolymers with a varying CE:XG ratio. The biopolymers were then regenerated together using water to produce solid blends in the form of films. Water-soluble XG persisted in the films following regeneration in water, indicating an attractive interaction between the CE and XG. The final CE:XG ratio of the blends was close to the initial value in solutions, further suggesting that intimate mixing takes place between CE and XG. The resulting CE/XG films were found to be free of ionic liquid, transparent and with no evidence of phase separation at the micron scale. The mechanical properties of the blend with a CE:XG ratio close to one revealed a synergistic effect for which a maximum in the elongation and stress at break was observed in combination with a high elastic modulus. Atomic force microscopy indicates a co-continuous nanostructure for this composition. It is proposed that the non-monotonous variation of the mechanical performance of the films with XG content is due to this observed nanostructuration.

摘要

在这项工作中,我们研究了纤维素 (CE)/木葡聚糖 (XG) 生物聚合物共混物的特性,灵感来自于植物细胞壁的优异机械性能。首先,CE 和 XG 在离子液体 1-乙基-3-甲基咪唑醋酸盐中共同溶解,以不同的 CE:XG 比例共混这些生物聚合物。然后,使用水将生物聚合物一起再生,以形成薄膜形式的固体共混物。水再生后,水可溶的 XG 仍存在于薄膜中,表明 CE 和 XG 之间存在吸引力相互作用。共混物的最终 CE:XG 比接近溶液中的初始值,进一步表明 CE 和 XG 之间发生了紧密混合。所得的 CE/XG 薄膜不含离子液体,透明且在微米尺度上没有相分离的证据。CE:XG 比接近 1 的共混物的机械性能表现出协同效应,其断裂伸长率和断裂应力达到最大值,同时具有较高的弹性模量。原子力显微镜表明这种组成具有共连续的纳米结构。据推测,随着 XG 含量的变化,薄膜的机械性能呈非单调变化,这是由于观察到的纳米结构所致。

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