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用于柔性电子封装的具有磁场辅助垂直排列六方氮化硼的高导热聚合物基薄膜。

Highly Thermally Conducting Polymer-Based Films with Magnetic Field-Assisted Vertically Aligned Hexagonal Boron Nitride for Flexible Electronic Encapsulation.

作者信息

Yuan Jie, Qian Xitang, Meng Zhichao, Yang Bo, Liu Zhi-Quan

机构信息

Institute of Metal Research , Chinese Academy of Sciences , Shenyang 110016 , China.

School of Materials Science and Engineering , University of Science and Technology of China , Shenyang 110016 , China.

出版信息

ACS Appl Mater Interfaces. 2019 May 15;11(19):17915-17924. doi: 10.1021/acsami.9b06062. Epub 2019 May 6.

DOI:10.1021/acsami.9b06062
PMID:31026136
Abstract

Here, a facile, low-cost, and high-efficiency method to construct a vertically aligned hexagonal boron nitride nanosheet (hBNN) thermal conduction channel structure is proposed to improve the thermal conductivity. First, exfoliated negatively charged BNNs and positively charged FeCo nanocubes self-assemble to form complex nanomaterials by strong electrostatic interactions. Then, the BNNs can orient with FeCo nanocubes in magnetic field, and the {001} facets of BNNs adsorb on the {100} facets of FeCo nanocubes. The large scale range and high-density FeCo/hBN-aligned structures are observed by scanning electron microscopy, which can act as thermal dissipation channels by conveying more phonons through a preponderant thermally conductive direction. The thermal conductivity of the composite films with 30 wt % FeCo and 50 wt % BN filler is 2.25 W m K, 7 times higher than that of the films only containing 50 wt % randomly distributed hBN filler (0.325 W m K) and 20 times higher than pure polydimethylsiloxane films (0.114 W m K). The thermal management capability of the composite films is evaluated as a thermal conducting substrate of a light-emitting diode chip and the infrared thermal technology. Apart from the surprising thermal conductivity, FeCo-BNNs composite films also exhibit superb flexibility.

摘要

在此,提出了一种简便、低成本且高效的方法来构建垂直排列的六方氮化硼纳米片(hBNN)热传导通道结构以提高热导率。首先,剥离的带负电的BNN与带正电的FeCo纳米立方体通过强静电相互作用自组装形成复合纳米材料。然后,BNN可以在磁场中与FeCo纳米立方体取向,并且BNN的{001}面吸附在FeCo纳米立方体的{100}面上。通过扫描电子显微镜观察到大规模范围和高密度的FeCo/hBN排列结构,其可以通过在优势热传导方向上传输更多声子来充当热耗散通道。含有30 wt% FeCo和50 wt% BN填料的复合薄膜的热导率为2.25 W m K,比仅含有50 wt%随机分布的hBN填料的薄膜(0.325 W m K)高7倍,比纯聚二甲基硅氧烷薄膜(0.114 W m K)高20倍。复合薄膜的热管理能力作为发光二极管芯片的导热基板和红外热技术进行评估。除了令人惊讶的热导率外,FeCo-BNNs复合薄膜还表现出极好的柔韧性。

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