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基于纳米纤维素辅助的单壁碳纳米管水基分散体的高导电、高强纳米复合材料。

Highly conducting, strong nanocomposites based on nanocellulose-assisted aqueous dispersions of single-wall carbon nanotubes.

机构信息

Department of Fibre and Polymer Technology, ‡Wallenberg Wood Science Centre, §Department of Mechanics, KTH Royal Institute of Technology , Teknikringen 56, 100 44 Stockholm, Sweden.

出版信息

ACS Nano. 2014 Mar 25;8(3):2467-76. doi: 10.1021/nn4060368. Epub 2014 Feb 14.

Abstract

It is challenging to obtain high-quality dispersions of single-wall nanotubes (SWNTs) in composite matrix materials, in order to reach the full potential of mechanical and electronic properties. The most widely used matrix materials are polymers, and the route to achieving high quality dispersions of SWNT is mainly chemical functionalization of the SWNT. This leads to increased cost, a loss of strength and lower conductivity. In addition full potential of colloidal self-assembly cannot be fully exploited in a polymer matrix. This may limit the possibilities for assembly of highly ordered structural nanocomposites. Here we show that nanofibrillated cellulose (NFC) can act as an excellent aqueous dispersion agent for as-prepared SWNTs, making possible low-cost exfoliation and purification of SWNTs with dispersion limits exceeding 40 wt %. The NFC:SWNT dispersion may also offer a cheap and sustainable alternative for molecular self-assembly of advanced composites. We demonstrate semitransparent conductive films, aerogels and anisotropic microscale fibers with nanoscale composite structure. The NFC:SWNT nanopaper shows increased strength at 3 wt % SWNT, reaching a modulus of 13.3 GPa, and a strength of 307 MPa. The anisotropic microfiber composites have maximum conductivities above 200 S cm(-1) and current densities reaching 1400 A cm(-2).

摘要

获得高质量的单壁纳米管(SWNTs)在复合材料基质中的分散体是具有挑战性的,以达到机械和电子性能的全部潜力。最广泛使用的基质材料是聚合物,实现 SWNT 高质量分散的途径主要是 SWNT 的化学功能化。这导致成本增加、强度损失和导电性降低。此外,胶体自组装的全部潜力不能在聚合物基质中得到充分利用。这可能限制高度有序结构纳米复合材料的组装可能性。在这里,我们表明纳米原纤化纤维素(NFC)可以作为预先制备的 SWNTs 的优异水性分散剂,使得 SWNTs 的低成本剥离和纯化成为可能,分散极限超过 40wt%。NFC:SWNT 分散体也可能为高级复合材料的分子自组装提供廉价且可持续的替代方案。我们展示了具有纳米复合结构的半透明导电薄膜、气凝胶和各向异性微尺度纤维。NFC:SWNT 纳米纸在 3wt%SWNT 时显示出强度增加,达到 13.3GPa 的模量和 307MPa 的强度。各向异性微纤维复合材料的电导率超过 200Scm-1,电流密度达到 1400Acm-2。

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