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Top-Down Approach Making Anisotropic Cellulose Aerogels as Universal Substrates for Multifunctionalization

机译:自上而下的方法使各向异性纤维素Aerogels作为多功能化的通用基材

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摘要

Highly porous, strong aerogels with anisotropic structural properties are of great interest for multifunctional materials for applications including insulators in buildings, filters for oil cleanup, electrical storage devices, etc. Contemporary aerogels are mostly extracted from fossil resources and synthesized from bottom-up techniques, often requiring additional strategies to obtain high anisotropy. In this work, a universal approach to prepare porous, strong, anisotropic aerogels is presented through exploiting the natural hierarchical and anisotropic structure of wood. The preparation comprises nanoscale removal of lignin, followed by dissolution-regeneration of nanofibers, leading to enhanced cell wall porosity with nanofibrillated networks occupying the pore space in the cellular wood structure. The aerogels retain structural anisotropy of natural wood, exhibit specific surface areas up to 247 m(2)/g, and show high compression strength at 95% porosity. This is a record specific area value for wood aerogels/foams and even higher than most cellulose-based aerogels for its assigned strength. The aerogel can serve as a platform for multifunctional composites including scaffolds for catalysis, gas separation, or liquid purification due to its porous matrix or as binder-free electrodes in electronics. To demonstrate the multifunctionality, the aerogels are successfully decorated with metal nanoparticles (Ag) and metal oxide nanoparticles (TiO2) by in situ synthesis, coated by the conductive polymer (PEDOT:PSS), and carbonized to yield conductive aerogels. This approach is found to be a universal way to prepare highly porous anisotropic aerogels.
机译:具有各向异性结构性能的高度多孔,具有各向异性结构性能的强烈风槽对于包括建筑物中的绝缘体,用于建筑物的绝缘子,用于油清理,蓄电装置等的过滤器的较大兴趣。当代风脚主要从化石资源中提取,从自下而上的技术中合成,通常需要额外的策略来获得高各向异性。在这项工作中,通过利用木材的自然等级和各向异性结构来提出一种制备多孔,强,各向异性气凝胶的普遍方法。该制剂包含木质素的纳米级去除,然后通过纳米纤维溶解再生,导致具有纳米纤细网络的细胞壁孔隙率,占据细胞木结构中的孔隙空间。 Aerogels保留天然木材的结构各向异性,表现出高达247μm(2)/ g的比表面积,并且在95%的孔隙率下显示出高的压缩强度。这是木制气凝胶/泡沫的记录特定区域值,甚至高于大多数基于纤维素的气凝胶,用于其分配的强度。气凝胶可以用作多功能复合材料的平台,包括用于催化的支架,气体分离或由于其多孔基质或电子器件中的无粘合剂电极而导致的催化剂。为了证明多功能性,通过原位合成成功地用金属纳米颗粒(Ag)和金属氧化物纳米粒子(TiO 2)装饰,通过导电聚合物(PEDOT:PS),并碳化以产生导电气凝胶。发现这种方法是制备高度多孔各向异性气凝胶的普遍方式。

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  • 来源
    《ACS nano》 |2020年第6期|共10页
  • 作者单位

    KTH Royal Inst Technol Dept Fiber &

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

    KTH Royal Inst Technol Dept Fiber &

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

    KTH Royal Inst Technol Sch Engn Sci Chem Biotechnol &

    Hlth Dept Chem S-10044 Stockholm Sweden;

    Uppsala Univ Dept Engn Sci Nanotechnol &

    Funct Mat S-75121 Uppsala Sweden;

    KTH Royal Inst Technol Sch Engn Sci Chem Biotechnol &

    Hlth Dept Chem S-10044 Stockholm Sweden;

    KTH Royal Inst Technol Dept Fiber &

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

    KTH Royal Inst Technol Dept Fiber &

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

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;
  • 关键词

    aerogel; anisotropy; top-down; wood nanotechnology; biocomposite;

    机译:气凝胶;各向异性;自上而下;木纳米技术;生物复合;

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