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Preserving Cellulose Structure: Delignified Wood Fibers for Paper Structures of High Strength and Transparency

机译:保存纤维素结构:用于纸张结构的基础木纤维高强度和透明度

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摘要

To expand the use of renewable materials, paper products with superior mechanical and optical properties are needed. Although beating, bleaching, and additives are known to improve industrially produced Kraft pulp papers, properties are limited by the quality of the fibers. While the use of nanocellulose has been shown to significantly increase paper properties, the current cost associated with their production has limited their industrial relevance. Here, using a simple mild peracetic acid (PAA) delignification process on spruce, we produce hemicellulose-rich holocellulose fibers (28.8 wt %) with high intrinsic strength (1200 MPa for fibers with microfibrillar angle smaller than 10 degrees). We show that PAA treatment causes less cellulose/hemicellulose degradation and better preserves cellulose nanostructure in comparison to conventional Kraft pulping. High-density holocellulose papers with superior mechanical properties (Young's modulus of 18 GPa and ultimate strength of 195 MPa) are manufactured using a water-based hot-pressing process, without the use of beating or additives. We propose that the preserved hemicelluloses act as "glue" in the interfiber region, improving both mechanical and optical properties of papers. Holocellulose fibers may be affordable and applicable candidates for making special paper/composites where high mechanical performance and/or optical transmittance are of interest.
机译:为了扩大可再生材料的使用,需要具有卓越机械和光学性质的纸制品。虽然已知打败,漂白和添加剂,但是在工业上生产的牛皮纸纸,但性质受到纤维的质量的限制。虽然已经显示使用纳米纤维素显着提高纸张性质,但与其生产相关的当前成本限制了其工业相关性。这里,在云杉中使用简单的温和过乙酸(PAA)脱乙酸(PAA)脱乙酸纤维,具有高固有强度的半纤维素 - 富含半纤维素的全纤维纤维(28.8wt%)(用于小于10度的微纤维角的纤维1200MPa)。我们表明PAA治疗导致较少的纤维素/半纤维素降解,并且与常规的牛皮纸制浆相比,更好地保留纤维素纳米结构。使用水性热压工艺制造具有优异的机械性能的高密度全纤维纸(杨氏模量为195MPa的最终强度),而不使用搅拌或添加剂。我们提出保存的半纤维素在纤维区域中充当“胶水”,提高了纸的机械和光学性质。全纤维素纤维可以是价格实惠的,可适用的候选物用于制造特殊纸/复合材料,其中高机械性能和/或光学透射率感兴趣。

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  • 来源
    《Biomacromolecules》 |2018年第7期|共10页
  • 作者单位

    KTH Royal Inst Technol Dept Fiber &

    Polymer Technol Wallenberg Wood Sci Ctr SE-10044 Stockholm Sweden;

    RISE Res Inst Sweden Master Samuelsgatan 60 SE-11121 Stockholm Sweden;

    KTH Royal Inst Technol Dept Fiber &

    Polymer Technol Wallenberg Wood Sci Ctr SE-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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