State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science , Fudan University , Shanghai 200433 , China.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Chemistry, Chemical Engineering and Biotechnology, Center for Advanced Low-Dimension Materials , Donghua University , Shanghai 201620 , China.
ACS Appl Mater Interfaces. 2018 Oct 10;10(40):34311-34321. doi: 10.1021/acsami.8b12565. Epub 2018 Sep 25.
Recently, graphene and carbon nanotubes (CNTs) promise considerable application potentials in the highly efficient thermal management of high-power devices because of their superb thermal conductivity (TC). However, the high electrical conductivity hampers their use in some fields where electrical insulating components are always required. Herein, to coordinate the thermal and electrical conductivity of CNT, fluorinated CNT (FCNT) was first used as a thermally conductive filler to prepare composite film with nanofibrillated celluloses (NFCs) via facile vacuum-assisted filtration. The obtained composite film shows a well-organized layered structure of the building blocks along the planar direction. Moreover, the one-dimensional structure of NFCs and the strong interaction of NFCs and FCNTs ensure sufficient connection between FCNT themselves and the reduced interfacial thermal resistance of NFCs/FCNTs, so that efficient heat transfer pathways can be well reserved, leading to simultaneous accessibility of high in-plane TC of 14.1 W m K and favorable electrical insulation property at an FCNT content of 35 wt %. Despite such a high FCNT loading, the strong interaction between NFCs and FCNTs enables the composite film to possess enhanced toughness, reliable mechanical strength, and flexibility. Therefore, we think that these outstanding comprehensive properties guarantee that the prepared composite film has promising applications in heat dissipation of next-generation portable and collapsible electronic devices.
最近,由于其出色的导热性能(TC),石墨烯和碳纳米管(CNTs)有望在高效热管理高功率器件方面具有相当大的应用潜力。然而,高导电性阻碍了它们在某些始终需要电绝缘组件的领域中的应用。在此,为了协调 CNT 的热学和电学性能,首先将氟化 CNT(FCNT)用作导热填料,通过简单的真空辅助过滤与纳米原纤纤维素(NFCs)制备复合膜。所得到的复合膜显示出沿平面方向构建块的良好组织层状结构。此外,NFCs 的一维结构和 NFCs 与 FCNTs 的强相互作用确保了 FCNT 本身之间以及 NFCs/FCNTs 之间的界面热阻的有效降低,从而可以很好地保留有效的热传递途径,同时获得高的面内热导率为 14.1 W m K 和在 FCNT 含量为 35wt%时的良好电绝缘性能。尽管如此高的 FCNT 负载量,NFCs 和 FCNTs 之间的强相互作用使复合膜具有增强的韧性、可靠的机械强度和柔韧性。因此,我们认为这些出色的综合性能保证了所制备的复合膜在下一代可便携和可折叠电子设备的散热方面具有广阔的应用前景。