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层层组装的纳米原纤化纤维素/石墨烯纳米片杂化薄膜的高各向异性热导率及其在热管理中的应用。

Highly Anisotropic Thermal Conductivity of Layer-by-Layer Assembled Nanofibrillated Cellulose/Graphene Nanosheets Hybrid Films for Thermal Management.

机构信息

Research Centre of Nanoscience and Nanotechnology, Shanghai University , 99 Shangda Road, Shanghai 200444, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2017 Jan 25;9(3):2924-2932. doi: 10.1021/acsami.6b11979. Epub 2017 Jan 10.

Abstract

An anisotropic thermally conductive film with tailorable microstructures and macroproperties is fabricated using a layer-by-layer (LbL) assembly of graphene oxide (GO) and nanofibrillated cellulose (NFC) on a flexible NFC substrate driven by hydrogen bonding interactions, followed by chemical reduction process. The resulting NFC/reduced graphene oxide (RGO) hybrid film reveals an orderly hierarchical structure in which the RGO nanosheets exhibit a high degree of orientation along the in-plane direction. The assembly cycles dramatically increase the in-plane thermal conductivity (λ) of the hybrid film to 12.6 W·m·K, while the cross-plane thermal conductivity (λ) shows a lower value of 0.042 W·m·K in the hybrid film with 40 assembly cycles. The thermal conductivity anisotropy reaches up to λ/λ = 279, which is substantially larger than that of similar polymeric nanocomposites, indicating that the LbL assembly on a flexible NFC substrate is an efficient technique for the preparation of polymeric nanocomposites with improved heat conducting property. Moreover, the layered hybrid film composed of 1D NFC and 2D RGO exhibits synergetic mechnical properties with outstanding flexibility and a high tensile strength (107 MPa). The combination of anisotropic thermal conductivity and superior mechanical performance may facilitate the applications in thermal management.

摘要

采用层层自组装(LbL)技术,在柔性 NFC 基底上组装氧化石墨烯(GO)和纳米原纤化纤维素(NFC),通过氢键相互作用驱动,随后进行化学还原过程,制备出具有可调节微观结构和宏观性能的各向异性导热膜。所得的 NFC/还原氧化石墨烯(RGO)杂化膜呈现出有序的分层结构,其中 RGO 纳米片沿面内方向高度取向。组装循环显著提高了杂化膜的面内热导率(λ),达到 12.6 W·m·K,而在具有 40 个组装循环的杂化膜中,面外热导率(λ)值较低,为 0.042 W·m·K。热导率各向异性高达 λ/λ = 279,明显大于类似的聚合物纳米复合材料,表明在柔性 NFC 基底上的 LbL 组装是制备具有改善导热性能的聚合物纳米复合材料的有效技术。此外,由 1D NFC 和 2D RGO 组成的层状杂化膜具有协同的力学性能,表现出优异的柔韧性和较高的拉伸强度(107 MPa)。各向异性热导率与优异力学性能的结合可能有助于在热管理中的应用。

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