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首页> 外文期刊>Biomacromolecules >Enzyme-Catalyzed Bottom-Up Synthesis of Mechanically and Physicochemically Stable Cellulose Hydrogels for Spatial Immobilization of Functional Colloidal Particles
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Enzyme-Catalyzed Bottom-Up Synthesis of Mechanically and Physicochemically Stable Cellulose Hydrogels for Spatial Immobilization of Functional Colloidal Particles

机译:酶催化的自下而上合成机械和物理化学稳定的纤维素水凝胶,用于功能性胶体颗粒的空间固定

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摘要

The dispersion stabilization of colloidal particles and subsequent construction of functional materials are of great interest in areas ranging from colloid chemistry to materials science. A promising strategy is the spatial immobilization of colloidal particles within gel scaffolds. However, conventional gels readily deform and even collapse when changes in environmental conditions occur. Herein, we describe the enzyme-catalyzed bottom-up synthesis of mechanically and physicochemically stable nanoribbon network hydrogels composed of crystalline cellulose oligomers in which cellulose nanocrystals (CNCs) as model colloidal particles are immobilized spatially. The stiffness of the hydrogels increased with the amount of CNCs incorporated. Filling the void space of the hydrogels with hydrophobic polymers resulted in polymer nanocomposites with excellent mechanical properties. The nanoribbon networks will be useful for demonstrating the potential functions of colloidal particles.
机译:胶体颗粒的分散稳定性和随后的功能材料构建对胶体化学对材料科学的范围的影响很大。 有希望的策略是凝胶支架内胶体颗粒的空间固定。 然而,当发生环境条件的变化时,常规凝胶容易变形甚至崩溃。 在此,我们描述了由晶体纤维素低聚物组成的机械和物理化学稳定的纳米孔网络水凝胶的酶催化的自下而上合成,其中作为模型胶体颗粒的纤维素纳米晶体(CNC)在空间上固定。 水凝胶的刚度随掺入的CNC量的增加而增加。 用疏水性聚合物填充水凝胶的空隙,导致聚合物纳米复合材料具有优异的机械性能。 纳米网络网络将有助于证明胶体颗粒的潜在功能。

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  • 来源
    《Biomacromolecules》 |2018年第4期|共7页
  • 作者单位

    Tokyo Inst Technol Dept Chem Sci &

    Engn Sch Mat &

    Chem Technol Meguro Ku 2-12-1-H121 Ookayama Tokyo 1528550 Japan;

    Tokyo Inst Technol Dept Chem Sci &

    Engn Sch Mat &

    Chem Technol Meguro Ku 2-12-1-H121 Ookayama Tokyo 1528550 Japan;

    Japan Sci &

    Technol Agcy Precursory Res Embryon Sci &

    Technol 4-1-8 Honcho Kawaguchi Saitama 3320012 Japan;

    Tokyo Inst Technol Dept Chem Sci &

    Engn Sch Mat &

    Chem Technol Meguro Ku 2-12-1-H121 Ookayama Tokyo 1528550 Japan;

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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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