Department of Materials Science and Engineering, University of Maryland , College Park, Maryland 20742, United States.
ACS Nano. 2014 Apr 22;8(4):3606-13. doi: 10.1021/nn500134m. Epub 2014 Mar 17.
In this work, we report a dielectric nanocomposite paper with layered boron nitride (BN) nanosheets wired by one-dimensional (1D) nanofibrillated cellulose (NFC) that has superior thermal and mechanical properties. These nanocomposite papers are fabricated from a filtration of BN and NFC suspensions, in which NFC is used as a stabilizer to stabilize BN nanosheets. In these nanocomposite papers, two-dimensional (2D) nanosheets form a thermally conductive network, while 1D NFC provides mechanical strength. A high thermal conductivity has been achieved along the BN paper surface (up to 145.7 W/m K for 50 wt % of BN), which is an order of magnitude higher than that in randomly distributed BN nanosheet composites and is even comparable to the thermal conductivity of aluminum alloys. Such a high thermal conductivity is mainly attributed to the structural alignment within the BN nanosheet papers; the effects of the interfacial thermal contact resistance are minimized by the fact that the heat transfer is in the direction parallel to the interface between BN nanosheets and that a large contact area occurs between BN nanosheets.
在这项工作中,我们报告了一种具有层状氮化硼(BN)纳米片的介电纳米复合纸,这些纳米片由一维(1D)纳米原纤化纤维素(NFC)编织而成,具有优异的热学和力学性能。这些纳米复合纸是通过 BN 和 NFC 悬浮液的过滤制备的,其中 NFC 用作稳定 BN 纳米片的稳定剂。在这些纳米复合纸中,二维(2D)纳米片形成了一个热导网络,而 1D NFC 则提供了机械强度。在 BN 纸表面实现了高导热率(50wt% BN 时高达 145.7 W/m K),比随机分布的 BN 纳米片复合材料的导热率高出一个数量级,甚至可与铝合金的导热率相媲美。这种高导热率主要归因于 BN 纳米片纸内的结构排列;界面热接触电阻的影响最小化,因为传热方向与 BN 纳米片之间的界面平行,并且 BN 纳米片之间存在较大的接触面积。