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低双折射且高韧性的纳米纤维素增强三醋酸纤维素。

Low-birefringent and highly tough nanocellulose-reinforced cellulose triacetate.

作者信息

Soeta Hiroto, Fujisawa Shuji, Saito Tsuguyuki, Berglund Lars, Isogai Akira

机构信息

†Department of Biomaterials Science, Graduate School of Agricultural and Life Sciences, The University of Tokyo, Tokyo 113-8657, Japan.

‡Department of Biomass Chemistry, Forestry and Forest Products Research Institute, 1 Matsuno-sato, Tsukuba, Ibaraki 305-8687, Japan.

出版信息

ACS Appl Mater Interfaces. 2015 May 27;7(20):11041-6. doi: 10.1021/acsami.5b02863. Epub 2015 May 15.

Abstract

Improvement of the mechanical and thermal properties of cellulose triacetate (CTA) films is required without sacrificing their optical properties. Here, poly(ethylene glycol) (PEG)-grafted cellulose nanofibril/CTA nanocomposite films were fabricated by casting and drying methods. The cellulose nanofibrils were prepared by 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO)-mediated oxidation, and amine-terminated PEG chains were grafted onto the surfaces of the TEMPO-oxidized cellulose nanofibrils (TOCNs) by ionic bonds. Because of the nanosize effect of TOCNs with a uniform width of ∼3 nm, the PEG-TOCN/CTA nanocomposite films had high transparency and low birefringence. The grafted PEG chains enhanced the filler-matrix interactions and crystallization of matrix CTA molecules, resulting in the Young's modulus and toughness of CTA film being significantly improved by PEG-grafted TOCN addition. The coefficient of thermal expansion of the original CTA film was mostly preserved even with the addition of PEG-grafted TOCNs. These results suggest that PEG-TOCNs are applicable to the reinforcement for transparent optical films.

摘要

在不牺牲纤维素三醋酸酯(CTA)薄膜光学性能的前提下,需要改善其机械性能和热性能。在此,通过流延和干燥方法制备了聚乙二醇(PEG)接枝纤维素纳米原纤/CTA纳米复合薄膜。纤维素纳米原纤通过2,2,6,6-四甲基哌啶-1-氧基(TEMPO)介导的氧化制备,并且胺端基PEG链通过离子键接枝到TEMPO氧化纤维素纳米原纤(TOCNs)的表面。由于宽度约为3nm的TOCNs具有纳米尺寸效应,PEG-TOCN/CTA纳米复合薄膜具有高透明度和低双折射。接枝的PEG链增强了填料与基体之间的相互作用以及基体CTA分子的结晶,通过添加PEG接枝的TOCN,CTA薄膜的杨氏模量和韧性得到显著提高。即使添加了PEG接枝的TOCNs,原始CTA薄膜的热膨胀系数也基本保持不变。这些结果表明,PEG-TOCNs适用于透明光学薄膜的增强。

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