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用于高效散热和电磁波吸收的核壳型氮化硼@氮掺杂碳异质界面工程

Engineering of the Core-Shell Boron Nitride@Nitrogen-Doped Carbon Heterogeneous Interface for Efficient Heat Dissipation and Electromagnetic Wave Absorption.

作者信息

Li Zhengxuan, Yang Wang, Jiang Bo, Wang Chaonan, Zhang Chengxiao, Wu Ni, Zhang Chen, Du Shaoxiong, Li Siyuan, Bai Hengxuan, Wang Xiaobai, Li Yongfeng

机构信息

State Key Laboratory of Heavy Oil Processing, China University of Petroleum (Beijing), Changping102249, China.

Department of Materials Application Research, AVIC Manufacturing Technology Institute, Beijing100024, China.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 8;15(5):7578-7591. doi: 10.1021/acsami.2c20766. Epub 2023 Jan 30.

Abstract

The effective integration of multiple functions into electromagnetic wave-absorbing (EWA) materials is the future development direction but remains a huge challenge. A rational selection of components and the design of structures can make the material have excellent EWA performance and heat dissipation. Herein, the core-shell structured boron nitride@nitrogen-doped carbon (BN@NC) is prepared by using waterborne polyurethane (WPU) as the carbon source via a facile pyrolysis treatment process, where NC is used as the conductive loss shell, and BN serves as an impedance matching core and dominant heat transfer media. As a result, the BN@NC-900 filled with paraffin wax yields a minimum reflection loss of -42.2 dB at 2.2 mm and an effective absorbing bandwidth of 4.48 GHz at 1.8 mm, and its thermal conductivity reaches up to 0.92 W/m·K in epoxy resin. Most importantly, flexible BN@NC/WPU films are prepared and simultaneously achieve the dual-functional capability of efficiently dissipating heat and electromagnetic waves (-50.0 dB). Besides, an attractive multiband absorption feature (>99%) from C to Ku bands is realized and a strong absorbing over -27.0 dB at the S band (2.88 GHz) is even achieved. This study may pave a new route for the rational design of multifunctional EWA materials.

摘要

将多种功能有效集成到电磁波吸收(EWA)材料中是未来的发展方向,但仍然是一个巨大的挑战。合理选择组分和设计结构可以使材料具有优异的EWA性能和散热性能。在此,通过简便的热解处理工艺,以水性聚氨酯(WPU)为碳源制备了核壳结构的氮化硼@氮掺杂碳(BN@NC),其中NC用作导电损耗壳,BN用作阻抗匹配核和主要的热传递介质。结果,填充石蜡的BN@NC-900在2.2 mm处产生的最小反射损耗为-42.2 dB,在1.8 mm处的有效吸收带宽为4.48 GHz,并且其在环氧树脂中的热导率高达0.92 W/m·K。最重要的是,制备了柔性BN@NC/WPU薄膜,并同时实现了高效散热和电磁波(-50.0 dB)的双功能能力。此外,实现了从C波段到Ku波段有吸引力的多波段吸收特性(>99%),甚至在S波段(2.88 GHz)实现了超过-27.0 dB的强吸收。该研究可能为多功能EWA材料的合理设计开辟一条新途径。

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