Coal tar pitch-based hyper-crosslinked polymers derived porous carbon for electromagnetic wave absorption

煤焦油 多孔性 吸收(声学) 材料科学 碳纤维 聚合物 化学工程 电磁辐射 复合材料 化学 有机化学 物理 工程类 光学 复合数
作者
Yaofeng Wu,Geqing Zhang,Chunjia Luo,Xi Chen,Min Chao,Luke Yan
出处
期刊:Nano Research [Springer Science+Business Media]
卷期号:18 (4): 94907324-94907324 被引量:7
标识
DOI:10.26599/nr.2025.94907324
摘要

Porous carbon (PC) materials have unique structures and excellent physicochemical properties, which offer significant advantages in the field of electromagnetic wave (EMW) absorption materials. However, how to utilize available raw materials and practical preparation techniques is a major challenge for PC microwave absorption materials to achieve engineering applications. In this study, inexpensive coal tar pitch (CTP) was used as a carbon source to prepare PC microwave absorbers. Firstly, hyper-crosslinked polymers (HCPs) were prepared by selectively crosslinking the aromatic components in CTP via Friedel-Crafts reaction using chloroalkanes as crosslinking agents. Further, PC materials with uniform structure were also prepared by simple high-temperature carbonization. The effects of cross-linker type (CH2Cl2, CHCl3 and CCl4) and carbonization temperature (600°C, 700°C and 800°C) on the microstructure, crystallization, dielectric and microwave absorption properties of PC materials were systematically studied. After modulation and optimization, all CTP-based PCs have uniform pore structure with a maximum specific surface area of 533.93 m2/g. The PC with CHCl3 as cross-linking agent carbonized at 700°C showed the exceptional microwave absorption performance, with the minimum refection loss (RLmin) of −43.08 dB and the maximum effective absorption bandwidth (EABmax) of 5.44 GHz. Meanwhile, the RLmin of CCl4-PC-800 also achieved −47.28 dB. This work has developed a simple and low-cost method for preparing PC microwave absorption materials, which has the potential to enable the mass production and engineering application of PCs, as well as facilitating processing technology innovation and high value-added utilization of CTP.
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