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Polymer Grafting Inside Wood Cellulose Fibers by Improved Hydroxyl Accessibility from Fiber Swelling

机译:通过改善纤维肿胀的羟基可接触性,在木材纤维素纤维内部嫁接聚合物

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摘要

Chemical modification of wood cellulose fibers is important for tailored wood-polymer interfaces, reduced moisture sorption, and novel grades of chemical wood pulp. The present study shows how the reaction solvent system influences hydroxyl accessibility during chemical fiber modification. Surface initiated ring-opening polymerization of e-caprolactone from wood cellulose fibers was investigated in a wide range of solvent systems. The hydrogen bond donor strength of the solvent increased graft density and the amount of grafted polycaprolactone (PCL) on the fiber surface, and on nanoscale fibrils inside the fiber. Specifically, the reaction system with acetic acid as a new, green solvent for cellulose grafting increased graft density 24 times compared to bulk polymerization conditions. The results show relationships between solvent properties, hydroxyl accessibility, and grafting results in cellulosic plant fibers. The study clarifies the opportunities provided by controlling the interior of the cellulosic plant fiber cell wall during chemical modification so that the fiber becomes a swollen cellulose nanofibril gel.
机译:木材纤维素纤维的化学改性对于量身定制的木聚合物界面是重要的,降低水分吸附和新型化学木浆等级。本研究显示了在化学纤维改性期间,反应溶剂系统如何影响羟基可接受性。在各种溶剂体系中研究了从木材纤维素纤维中的E-己内酯的表面发起的开环聚合。溶剂的氢键供体强度增加了纤维表面上的移植物密度和接枝聚己内酯(PCL)的量,以及纤维内的纳米级原纤维。具体地,与甲酸作为乙酸的反应体系作为一种新的绿色溶剂,用于纤维素接枝增加移植物密度24次与本体聚合条件相比增加24次。结果表明纤维素植物纤维中溶剂性能,羟基可接受性和嫁接结果之间的关系。该研究阐明了在化学改性期间控制纤维素植物纤维细胞壁内部提供的机会,使得纤维成为纤维素纳米纤维凝胶溶胀。

著录项

  • 来源
    《Biomacromolecules》 |2020年第2期|共7页
  • 作者单位

    KTH Royal Inst Technol Wallenberg Wood Sci Ctr Dept Fibre &

    Polymer Technol Teknikringen 56-58 S-10044 Stockholm Sweden;

    KTH Royal Inst Technol Wallenberg Wood Sci Ctr Dept Fibre &

    Polymer Technol Teknikringen 56-58 S-10044 Stockholm Sweden;

    KTH Royal Inst Technol Wallenberg Wood Sci Ctr Dept Fibre &

    Polymer Technol Teknikringen 56-58 S-10044 Stockholm Sweden;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
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